sparc-tdep.c revision 1.12 1 1.1 christos /* Target-dependent code for SPARC.
2 1.1 christos
3 1.11 christos Copyright (C) 2003-2024 Free Software Foundation, Inc.
4 1.1 christos
5 1.1 christos This file is part of GDB.
6 1.1 christos
7 1.1 christos This program is free software; you can redistribute it and/or modify
8 1.1 christos it under the terms of the GNU General Public License as published by
9 1.1 christos the Free Software Foundation; either version 3 of the License, or
10 1.1 christos (at your option) any later version.
11 1.1 christos
12 1.1 christos This program is distributed in the hope that it will be useful,
13 1.1 christos but WITHOUT ANY WARRANTY; without even the implied warranty of
14 1.1 christos MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 1.1 christos GNU General Public License for more details.
16 1.1 christos
17 1.1 christos You should have received a copy of the GNU General Public License
18 1.1 christos along with this program. If not, see <http://www.gnu.org/licenses/>. */
19 1.1 christos
20 1.1 christos #include "arch-utils.h"
21 1.1 christos #include "dis-asm.h"
22 1.8 christos #include "dwarf2.h"
23 1.9 christos #include "dwarf2/frame.h"
24 1.11 christos #include "extract-store-integer.h"
25 1.1 christos #include "frame.h"
26 1.1 christos #include "frame-base.h"
27 1.1 christos #include "frame-unwind.h"
28 1.1 christos #include "gdbcore.h"
29 1.1 christos #include "gdbtypes.h"
30 1.1 christos #include "inferior.h"
31 1.1 christos #include "symtab.h"
32 1.1 christos #include "objfiles.h"
33 1.1 christos #include "osabi.h"
34 1.1 christos #include "regcache.h"
35 1.1 christos #include "target.h"
36 1.7 christos #include "target-descriptions.h"
37 1.1 christos #include "value.h"
38 1.1 christos
39 1.1 christos #include "sparc-tdep.h"
40 1.1 christos #include "sparc-ravenscar-thread.h"
41 1.7 christos #include <algorithm>
42 1.1 christos
43 1.1 christos struct regset;
44 1.1 christos
45 1.1 christos /* This file implements the SPARC 32-bit ABI as defined by the section
46 1.1 christos "Low-Level System Information" of the SPARC Compliance Definition
47 1.1 christos (SCD) 2.4.1, which is the 32-bit System V psABI for SPARC. The SCD
48 1.1 christos lists changes with respect to the original 32-bit psABI as defined
49 1.1 christos in the "System V ABI, SPARC Processor Supplement".
50 1.1 christos
51 1.1 christos Note that if we talk about SunOS, we mean SunOS 4.x, which was
52 1.1 christos BSD-based, which is sometimes (retroactively?) referred to as
53 1.1 christos Solaris 1.x. If we talk about Solaris we mean Solaris 2.x and
54 1.1 christos above (Solaris 7, 8 and 9 are nothing but Solaris 2.7, 2.8 and 2.9
55 1.1 christos suffering from severe version number inflation). Solaris 2.x is
56 1.1 christos also known as SunOS 5.x, since that's what uname(1) says. Solaris
57 1.1 christos 2.x is SVR4-based. */
58 1.1 christos
59 1.1 christos /* Please use the sparc32_-prefix for 32-bit specific code, the
60 1.1 christos sparc64_-prefix for 64-bit specific code and the sparc_-prefix for
61 1.1 christos code that can handle both. The 64-bit specific code lives in
62 1.1 christos sparc64-tdep.c; don't add any here. */
63 1.1 christos
64 1.1 christos /* The stack pointer is offset from the stack frame by a BIAS of 2047
65 1.1 christos (0x7ff) for 64-bit code. BIAS is likely to be defined on SPARC
66 1.1 christos hosts, so undefine it first. */
67 1.1 christos #undef BIAS
68 1.1 christos #define BIAS 2047
69 1.1 christos
70 1.1 christos /* Macros to extract fields from SPARC instructions. */
71 1.1 christos #define X_OP(i) (((i) >> 30) & 0x3)
72 1.1 christos #define X_RD(i) (((i) >> 25) & 0x1f)
73 1.1 christos #define X_A(i) (((i) >> 29) & 1)
74 1.1 christos #define X_COND(i) (((i) >> 25) & 0xf)
75 1.1 christos #define X_OP2(i) (((i) >> 22) & 0x7)
76 1.1 christos #define X_IMM22(i) ((i) & 0x3fffff)
77 1.1 christos #define X_OP3(i) (((i) >> 19) & 0x3f)
78 1.1 christos #define X_RS1(i) (((i) >> 14) & 0x1f)
79 1.1 christos #define X_RS2(i) ((i) & 0x1f)
80 1.1 christos #define X_I(i) (((i) >> 13) & 1)
81 1.1 christos /* Sign extension macros. */
82 1.1 christos #define X_DISP22(i) ((X_IMM22 (i) ^ 0x200000) - 0x200000)
83 1.1 christos #define X_DISP19(i) ((((i) & 0x7ffff) ^ 0x40000) - 0x40000)
84 1.1 christos #define X_DISP10(i) ((((((i) >> 11) && 0x300) | (((i) >> 5) & 0xff)) ^ 0x200) - 0x200)
85 1.1 christos #define X_SIMM13(i) ((((i) & 0x1fff) ^ 0x1000) - 0x1000)
86 1.3 christos /* Macros to identify some instructions. */
87 1.3 christos /* RETURN (RETT in V8) */
88 1.3 christos #define X_RETTURN(i) ((X_OP (i) == 0x2) && (X_OP3 (i) == 0x39))
89 1.1 christos
90 1.1 christos /* Fetch the instruction at PC. Instructions are always big-endian
91 1.1 christos even if the processor operates in little-endian mode. */
92 1.1 christos
93 1.1 christos unsigned long
94 1.1 christos sparc_fetch_instruction (CORE_ADDR pc)
95 1.1 christos {
96 1.1 christos gdb_byte buf[4];
97 1.1 christos unsigned long insn;
98 1.1 christos int i;
99 1.1 christos
100 1.1 christos /* If we can't read the instruction at PC, return zero. */
101 1.1 christos if (target_read_memory (pc, buf, sizeof (buf)))
102 1.1 christos return 0;
103 1.1 christos
104 1.1 christos insn = 0;
105 1.1 christos for (i = 0; i < sizeof (buf); i++)
106 1.1 christos insn = (insn << 8) | buf[i];
107 1.1 christos return insn;
108 1.1 christos }
109 1.1 christos
110 1.1 christos
112 1.1 christos /* Return non-zero if the instruction corresponding to PC is an "unimp"
113 1.1 christos instruction. */
114 1.1 christos
115 1.1 christos static int
116 1.1 christos sparc_is_unimp_insn (CORE_ADDR pc)
117 1.1 christos {
118 1.1 christos const unsigned long insn = sparc_fetch_instruction (pc);
119 1.1 christos
120 1.1 christos return ((insn & 0xc1c00000) == 0);
121 1.1 christos }
122 1.1 christos
123 1.1 christos /* Return non-zero if the instruction corresponding to PC is an
124 1.1 christos "annulled" branch, i.e. the annul bit is set. */
125 1.1 christos
126 1.1 christos int
127 1.1 christos sparc_is_annulled_branch_insn (CORE_ADDR pc)
128 1.1 christos {
129 1.1 christos /* The branch instructions featuring an annul bit can be identified
130 1.1 christos by the following bit patterns:
131 1.1 christos
132 1.1 christos OP=0
133 1.1 christos OP2=1: Branch on Integer Condition Codes with Prediction (BPcc).
134 1.1 christos OP2=2: Branch on Integer Condition Codes (Bcc).
135 1.1 christos OP2=5: Branch on FP Condition Codes with Prediction (FBfcc).
136 1.1 christos OP2=6: Branch on FP Condition Codes (FBcc).
137 1.10 christos OP2=3 && Bit28=0:
138 1.1 christos Branch on Integer Register with Prediction (BPr).
139 1.1 christos
140 1.1 christos This leaves out ILLTRAP (OP2=0), SETHI/NOP (OP2=4) and the V8
141 1.1 christos coprocessor branch instructions (Op2=7). */
142 1.1 christos
143 1.1 christos const unsigned long insn = sparc_fetch_instruction (pc);
144 1.1 christos const unsigned op2 = X_OP2 (insn);
145 1.1 christos
146 1.1 christos if ((X_OP (insn) == 0)
147 1.1 christos && ((op2 == 1) || (op2 == 2) || (op2 == 5) || (op2 == 6)
148 1.1 christos || ((op2 == 3) && ((insn & 0x10000000) == 0))))
149 1.1 christos return X_A (insn);
150 1.1 christos else
151 1.1 christos return 0;
152 1.1 christos }
153 1.1 christos
154 1.1 christos /* OpenBSD/sparc includes StackGhost, which according to the author's
155 1.1 christos website http://stackghost.cerias.purdue.edu "... transparently and
156 1.1 christos automatically protects applications' stack frames; more
157 1.1 christos specifically, it guards the return pointers. The protection
158 1.1 christos mechanisms require no application source or binary modification and
159 1.1 christos imposes only a negligible performance penalty."
160 1.1 christos
161 1.1 christos The same website provides the following description of how
162 1.1 christos StackGhost works:
163 1.1 christos
164 1.1 christos "StackGhost interfaces with the kernel trap handler that would
165 1.1 christos normally write out registers to the stack and the handler that
166 1.1 christos would read them back in. By XORing a cookie into the
167 1.1 christos return-address saved in the user stack when it is actually written
168 1.1 christos to the stack, and then XOR it out when the return-address is pulled
169 1.1 christos from the stack, StackGhost can cause attacker corrupted return
170 1.1 christos pointers to behave in a manner the attacker cannot predict.
171 1.1 christos StackGhost can also use several unused bits in the return pointer
172 1.1 christos to detect a smashed return pointer and abort the process."
173 1.1 christos
174 1.1 christos For GDB this means that whenever we're reading %i7 from a stack
175 1.1 christos frame's window save area, we'll have to XOR the cookie.
176 1.1 christos
177 1.1 christos More information on StackGuard can be found on in:
178 1.1 christos
179 1.1 christos Mike Frantzen and Mike Shuey. "StackGhost: Hardware Facilitated
180 1.1 christos Stack Protection." 2001. Published in USENIX Security Symposium
181 1.1 christos '01. */
182 1.1 christos
183 1.1 christos /* Fetch StackGhost Per-Process XOR cookie. */
184 1.1 christos
185 1.1 christos ULONGEST
186 1.1 christos sparc_fetch_wcookie (struct gdbarch *gdbarch)
187 1.1 christos {
188 1.10 christos enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
189 1.1 christos struct target_ops *ops = current_inferior ()->top_target ();
190 1.1 christos gdb_byte buf[8];
191 1.1 christos int len;
192 1.1 christos
193 1.1 christos len = target_read (ops, TARGET_OBJECT_WCOOKIE, NULL, buf, 0, 8);
194 1.1 christos if (len == -1)
195 1.1 christos return 0;
196 1.1 christos
197 1.1 christos /* We should have either an 32-bit or an 64-bit cookie. */
198 1.1 christos gdb_assert (len == 4 || len == 8);
199 1.1 christos
200 1.1 christos return extract_unsigned_integer (buf, len, byte_order);
201 1.1 christos }
202 1.1 christos
203 1.1 christos
205 1.1 christos /* The functions on this page are intended to be used to classify
206 1.1 christos function arguments. */
207 1.1 christos
208 1.1 christos /* Check whether TYPE is "Integral or Pointer". */
209 1.1 christos
210 1.1 christos static int
211 1.10 christos sparc_integral_or_pointer_p (const struct type *type)
212 1.1 christos {
213 1.9 christos int len = type->length ();
214 1.1 christos
215 1.1 christos switch (type->code ())
216 1.1 christos {
217 1.1 christos case TYPE_CODE_INT:
218 1.1 christos case TYPE_CODE_BOOL:
219 1.1 christos case TYPE_CODE_CHAR:
220 1.1 christos case TYPE_CODE_ENUM:
221 1.1 christos case TYPE_CODE_RANGE:
222 1.1 christos /* We have byte, half-word, word and extended-word/doubleword
223 1.1 christos integral types. The doubleword is an extension to the
224 1.1 christos original 32-bit ABI by the SCD 2.4.x. */
225 1.1 christos return (len == 1 || len == 2 || len == 4 || len == 8);
226 1.7 christos case TYPE_CODE_PTR:
227 1.1 christos case TYPE_CODE_REF:
228 1.1 christos case TYPE_CODE_RVALUE_REF:
229 1.1 christos /* Allow either 32-bit or 64-bit pointers. */
230 1.1 christos return (len == 4 || len == 8);
231 1.1 christos default:
232 1.1 christos break;
233 1.1 christos }
234 1.1 christos
235 1.1 christos return 0;
236 1.1 christos }
237 1.1 christos
238 1.1 christos /* Check whether TYPE is "Floating". */
239 1.1 christos
240 1.1 christos static int
241 1.9 christos sparc_floating_p (const struct type *type)
242 1.1 christos {
243 1.1 christos switch (type->code ())
244 1.1 christos {
245 1.10 christos case TYPE_CODE_FLT:
246 1.1 christos {
247 1.1 christos int len = type->length ();
248 1.1 christos return (len == 4 || len == 8 || len == 16);
249 1.1 christos }
250 1.1 christos default:
251 1.1 christos break;
252 1.1 christos }
253 1.1 christos
254 1.1 christos return 0;
255 1.1 christos }
256 1.1 christos
257 1.1 christos /* Check whether TYPE is "Complex Floating". */
258 1.1 christos
259 1.1 christos static int
260 1.9 christos sparc_complex_floating_p (const struct type *type)
261 1.1 christos {
262 1.1 christos switch (type->code ())
263 1.1 christos {
264 1.10 christos case TYPE_CODE_COMPLEX:
265 1.1 christos {
266 1.1 christos int len = type->length ();
267 1.1 christos return (len == 8 || len == 16 || len == 32);
268 1.1 christos }
269 1.1 christos default:
270 1.1 christos break;
271 1.1 christos }
272 1.1 christos
273 1.1 christos return 0;
274 1.1 christos }
275 1.1 christos
276 1.1 christos /* Check whether TYPE is "Structure or Union".
277 1.1 christos
278 1.1 christos In terms of Ada subprogram calls, arrays are treated the same as
279 1.1 christos struct and union types. So this function also returns non-zero
280 1.1 christos for array types. */
281 1.1 christos
282 1.1 christos static int
283 1.9 christos sparc_structure_or_union_p (const struct type *type)
284 1.1 christos {
285 1.1 christos switch (type->code ())
286 1.1 christos {
287 1.1 christos case TYPE_CODE_STRUCT:
288 1.1 christos case TYPE_CODE_UNION:
289 1.1 christos case TYPE_CODE_ARRAY:
290 1.1 christos return 1;
291 1.1 christos default:
292 1.1 christos break;
293 1.1 christos }
294 1.1 christos
295 1.1 christos return 0;
296 1.8 christos }
297 1.8 christos
298 1.8 christos /* Return true if TYPE is returned by memory, false if returned by
299 1.8 christos register. */
300 1.8 christos
301 1.8 christos static bool
302 1.10 christos sparc_structure_return_p (const struct type *type)
303 1.8 christos {
304 1.8 christos if (type->code () == TYPE_CODE_ARRAY && type->is_vector ())
305 1.10 christos {
306 1.8 christos /* Float vectors are always returned by memory. */
307 1.8 christos if (sparc_floating_p (check_typedef (type->target_type ())))
308 1.8 christos return true;
309 1.10 christos /* Integer vectors are returned by memory if the vector size
310 1.8 christos is greater than 8 bytes long. */
311 1.8 christos return (type->length () > 8);
312 1.8 christos }
313 1.8 christos
314 1.8 christos if (sparc_floating_p (type))
315 1.8 christos {
316 1.10 christos /* Floating point types are passed by register for size 4 and
317 1.8 christos 8 bytes, and by memory for size 16 bytes. */
318 1.8 christos return (type->length () == 16);
319 1.8 christos }
320 1.8 christos
321 1.8 christos /* Other than that, only aggregates of all sizes get returned by
322 1.8 christos memory. */
323 1.8 christos return sparc_structure_or_union_p (type);
324 1.8 christos }
325 1.8 christos
326 1.8 christos /* Return true if arguments of the given TYPE are passed by
327 1.8 christos memory; false if returned by register. */
328 1.8 christos
329 1.8 christos static bool
330 1.10 christos sparc_arg_by_memory_p (const struct type *type)
331 1.8 christos {
332 1.8 christos if (type->code () == TYPE_CODE_ARRAY && type->is_vector ())
333 1.10 christos {
334 1.8 christos /* Float vectors are always passed by memory. */
335 1.8 christos if (sparc_floating_p (check_typedef (type->target_type ())))
336 1.8 christos return true;
337 1.10 christos /* Integer vectors are passed by memory if the vector size
338 1.8 christos is greater than 8 bytes long. */
339 1.8 christos return (type->length () > 8);
340 1.8 christos }
341 1.8 christos
342 1.8 christos /* Floats are passed by register for size 4 and 8 bytes, and by memory
343 1.10 christos for size 16 bytes. */
344 1.8 christos if (sparc_floating_p (type))
345 1.8 christos return (type->length () == 16);
346 1.8 christos
347 1.8 christos /* Complex floats and aggregates of all sizes are passed by memory. */
348 1.8 christos if (sparc_complex_floating_p (type) || sparc_structure_or_union_p (type))
349 1.8 christos return true;
350 1.8 christos
351 1.8 christos /* Everything else gets passed by register. */
352 1.8 christos return false;
353 1.1 christos }
354 1.7 christos
355 1.7 christos /* Register information. */
356 1.7 christos #define SPARC32_FPU_REGISTERS \
357 1.7 christos "f0", "f1", "f2", "f3", "f4", "f5", "f6", "f7", \
358 1.7 christos "f8", "f9", "f10", "f11", "f12", "f13", "f14", "f15", \
359 1.7 christos "f16", "f17", "f18", "f19", "f20", "f21", "f22", "f23", \
360 1.7 christos "f24", "f25", "f26", "f27", "f28", "f29", "f30", "f31"
361 1.7 christos #define SPARC32_CP0_REGISTERS \
362 1.10 christos "y", "psr", "wim", "tbr", "pc", "npc", "fsr", "csr"
363 1.10 christos
364 1.10 christos static const char * const sparc_core_register_names[] = {
365 1.10 christos SPARC_CORE_REGISTERS
366 1.10 christos };
367 1.10 christos static const char * const sparc32_fpu_register_names[] = {
368 1.10 christos SPARC32_FPU_REGISTERS
369 1.10 christos };
370 1.10 christos static const char * const sparc32_cp0_register_names[] = {
371 1.1 christos SPARC32_CP0_REGISTERS
372 1.10 christos };
373 1.1 christos
374 1.7 christos static const char * const sparc32_register_names[] =
375 1.7 christos {
376 1.7 christos SPARC_CORE_REGISTERS,
377 1.1 christos SPARC32_FPU_REGISTERS,
378 1.1 christos SPARC32_CP0_REGISTERS
379 1.1 christos };
380 1.1 christos
381 1.1 christos /* Total number of registers. */
382 1.1 christos #define SPARC32_NUM_REGS ARRAY_SIZE (sparc32_register_names)
383 1.12 christos
384 1.1 christos /* We provide the aliases %d0..%d30 for the floating registers as
385 1.10 christos "pseudo" registers. */
386 1.1 christos
387 1.1 christos static const char * const sparc32_pseudo_register_names[] =
388 1.1 christos {
389 1.1 christos "d0", "d2", "d4", "d6", "d8", "d10", "d12", "d14",
390 1.1 christos "d16", "d18", "d20", "d22", "d24", "d26", "d28", "d30"
391 1.1 christos };
392 1.1 christos
393 1.1 christos /* Total number of pseudo registers. */
394 1.7 christos #define SPARC32_NUM_PSEUDO_REGS ARRAY_SIZE (sparc32_pseudo_register_names)
395 1.7 christos
396 1.7 christos /* Return the name of pseudo register REGNUM. */
397 1.7 christos
398 1.7 christos static const char *
399 1.7 christos sparc32_pseudo_register_name (struct gdbarch *gdbarch, int regnum)
400 1.7 christos {
401 1.10 christos regnum -= gdbarch_num_regs (gdbarch);
402 1.10 christos
403 1.7 christos gdb_assert (regnum < SPARC32_NUM_PSEUDO_REGS);
404 1.7 christos return sparc32_pseudo_register_names[regnum];
405 1.1 christos }
406 1.1 christos
407 1.1 christos /* Return the name of register REGNUM. */
408 1.1 christos
409 1.1 christos static const char *
410 1.7 christos sparc32_register_name (struct gdbarch *gdbarch, int regnum)
411 1.7 christos {
412 1.7 christos if (tdesc_has_registers (gdbarch_target_desc (gdbarch)))
413 1.7 christos return tdesc_register_name (gdbarch, regnum);
414 1.1 christos
415 1.1 christos if (regnum >= 0 && regnum < gdbarch_num_regs (gdbarch))
416 1.7 christos return sparc32_register_names[regnum];
417 1.1 christos
418 1.1 christos return sparc32_pseudo_register_name (gdbarch, regnum);
419 1.1 christos }
420 1.1 christos
421 1.1 christos /* Construct types for ISA-specific registers. */
423 1.1 christos
424 1.10 christos static struct type *
425 1.1 christos sparc_psr_type (struct gdbarch *gdbarch)
426 1.1 christos {
427 1.1 christos sparc_gdbarch_tdep *tdep = gdbarch_tdep<sparc_gdbarch_tdep> (gdbarch);
428 1.1 christos
429 1.1 christos if (!tdep->sparc_psr_type)
430 1.8 christos {
431 1.1 christos struct type *type;
432 1.1 christos
433 1.1 christos type = arch_flags_type (gdbarch, "builtin_type_sparc_psr", 32);
434 1.1 christos append_flags_type_flag (type, 5, "ET");
435 1.1 christos append_flags_type_flag (type, 6, "PS");
436 1.1 christos append_flags_type_flag (type, 7, "S");
437 1.1 christos append_flags_type_flag (type, 12, "EF");
438 1.1 christos append_flags_type_flag (type, 13, "EC");
439 1.1 christos
440 1.1 christos tdep->sparc_psr_type = type;
441 1.1 christos }
442 1.1 christos
443 1.1 christos return tdep->sparc_psr_type;
444 1.1 christos }
445 1.1 christos
446 1.10 christos static struct type *
447 1.1 christos sparc_fsr_type (struct gdbarch *gdbarch)
448 1.1 christos {
449 1.1 christos sparc_gdbarch_tdep *tdep = gdbarch_tdep<sparc_gdbarch_tdep> (gdbarch);
450 1.1 christos
451 1.1 christos if (!tdep->sparc_fsr_type)
452 1.8 christos {
453 1.1 christos struct type *type;
454 1.1 christos
455 1.1 christos type = arch_flags_type (gdbarch, "builtin_type_sparc_fsr", 32);
456 1.1 christos append_flags_type_flag (type, 0, "NXA");
457 1.1 christos append_flags_type_flag (type, 1, "DZA");
458 1.1 christos append_flags_type_flag (type, 2, "UFA");
459 1.1 christos append_flags_type_flag (type, 3, "OFA");
460 1.1 christos append_flags_type_flag (type, 4, "NVA");
461 1.1 christos append_flags_type_flag (type, 5, "NXC");
462 1.1 christos append_flags_type_flag (type, 6, "DZC");
463 1.1 christos append_flags_type_flag (type, 7, "UFC");
464 1.1 christos append_flags_type_flag (type, 8, "OFC");
465 1.1 christos append_flags_type_flag (type, 9, "NVC");
466 1.1 christos append_flags_type_flag (type, 22, "NS");
467 1.1 christos append_flags_type_flag (type, 23, "NXM");
468 1.1 christos append_flags_type_flag (type, 24, "DZM");
469 1.1 christos append_flags_type_flag (type, 25, "UFM");
470 1.1 christos append_flags_type_flag (type, 26, "OFM");
471 1.1 christos append_flags_type_flag (type, 27, "NVM");
472 1.1 christos
473 1.1 christos tdep->sparc_fsr_type = type;
474 1.1 christos }
475 1.1 christos
476 1.1 christos return tdep->sparc_fsr_type;
477 1.7 christos }
478 1.7 christos
479 1.7 christos /* Return the GDB type object for the "standard" data type of data in
480 1.7 christos pseudo register REGNUM. */
481 1.7 christos
482 1.7 christos static struct type *
483 1.7 christos sparc32_pseudo_register_type (struct gdbarch *gdbarch, int regnum)
484 1.7 christos {
485 1.7 christos regnum -= gdbarch_num_regs (gdbarch);
486 1.7 christos
487 1.10 christos if (regnum >= SPARC32_D0_REGNUM && regnum <= SPARC32_D30_REGNUM)
488 1.10 christos return builtin_type (gdbarch)->builtin_double;
489 1.7 christos
490 1.7 christos internal_error (_("sparc32_pseudo_register_type: bad register number %d"),
491 1.7 christos regnum);
492 1.1 christos }
493 1.1 christos
494 1.1 christos /* Return the GDB type object for the "standard" data type of data in
495 1.1 christos register REGNUM. */
496 1.1 christos
497 1.7 christos static struct type *
498 1.7 christos sparc32_register_type (struct gdbarch *gdbarch, int regnum)
499 1.7 christos {
500 1.1 christos if (tdesc_has_registers (gdbarch_target_desc (gdbarch)))
501 1.1 christos return tdesc_register_type (gdbarch, regnum);
502 1.1 christos
503 1.1 christos if (regnum >= SPARC_F0_REGNUM && regnum <= SPARC_F31_REGNUM)
504 1.1 christos return builtin_type (gdbarch)->builtin_float;
505 1.1 christos
506 1.1 christos if (regnum == SPARC_SP_REGNUM || regnum == SPARC_FP_REGNUM)
507 1.1 christos return builtin_type (gdbarch)->builtin_data_ptr;
508 1.1 christos
509 1.1 christos if (regnum == SPARC32_PC_REGNUM || regnum == SPARC32_NPC_REGNUM)
510 1.1 christos return builtin_type (gdbarch)->builtin_func_ptr;
511 1.1 christos
512 1.1 christos if (regnum == SPARC32_PSR_REGNUM)
513 1.1 christos return sparc_psr_type (gdbarch);
514 1.1 christos
515 1.7 christos if (regnum == SPARC32_FSR_REGNUM)
516 1.7 christos return sparc_fsr_type (gdbarch);
517 1.7 christos
518 1.1 christos if (regnum >= gdbarch_num_regs (gdbarch))
519 1.1 christos return sparc32_pseudo_register_type (gdbarch, regnum);
520 1.1 christos
521 1.1 christos return builtin_type (gdbarch)->builtin_int32;
522 1.1 christos }
523 1.8 christos
524 1.1 christos static enum register_status
525 1.1 christos sparc32_pseudo_register_read (struct gdbarch *gdbarch,
526 1.1 christos readable_regcache *regcache,
527 1.1 christos int regnum, gdb_byte *buf)
528 1.7 christos {
529 1.1 christos enum register_status status;
530 1.1 christos
531 1.1 christos regnum -= gdbarch_num_regs (gdbarch);
532 1.8 christos gdb_assert (regnum >= SPARC32_D0_REGNUM && regnum <= SPARC32_D30_REGNUM);
533 1.1 christos
534 1.8 christos regnum = SPARC_F0_REGNUM + 2 * (regnum - SPARC32_D0_REGNUM);
535 1.1 christos status = regcache->raw_read (regnum, buf);
536 1.1 christos if (status == REG_VALID)
537 1.1 christos status = regcache->raw_read (regnum + 1, buf + 4);
538 1.1 christos return status;
539 1.1 christos }
540 1.1 christos
541 1.1 christos static void
542 1.1 christos sparc32_pseudo_register_write (struct gdbarch *gdbarch,
543 1.7 christos struct regcache *regcache,
544 1.1 christos int regnum, const gdb_byte *buf)
545 1.1 christos {
546 1.1 christos regnum -= gdbarch_num_regs (gdbarch);
547 1.8 christos gdb_assert (regnum >= SPARC32_D0_REGNUM && regnum <= SPARC32_D30_REGNUM);
548 1.8 christos
549 1.1 christos regnum = SPARC_F0_REGNUM + 2 * (regnum - SPARC32_D0_REGNUM);
550 1.1 christos regcache->raw_write (regnum, buf);
551 1.5 christos regcache->raw_write (regnum + 1, buf + 4);
552 1.3 christos }
553 1.3 christos
554 1.5 christos /* Implement the stack_frame_destroyed_p gdbarch method. */
556 1.3 christos
557 1.3 christos int
558 1.3 christos sparc_stack_frame_destroyed_p (struct gdbarch *gdbarch, CORE_ADDR pc)
559 1.3 christos {
560 1.3 christos /* This function must return true if we are one instruction after an
561 1.3 christos instruction that destroyed the stack frame of the current
562 1.3 christos function. The SPARC instructions used to restore the callers
563 1.3 christos stack frame are RESTORE and RETURN/RETT.
564 1.3 christos
565 1.3 christos Of these RETURN/RETT is a branch instruction and thus we return
566 1.3 christos true if we are in its delay slot.
567 1.3 christos
568 1.3 christos RESTORE is almost always found in the delay slot of a branch
569 1.3 christos instruction that transfers control to the caller, such as JMPL.
570 1.3 christos Thus the next instruction is in the caller frame and we don't
571 1.3 christos need to do anything about it. */
572 1.3 christos
573 1.3 christos unsigned int insn = sparc_fetch_instruction (pc - 4);
574 1.1 christos
575 1.1 christos return X_RETTURN (insn);
576 1.1 christos }
577 1.1 christos
578 1.1 christos
580 1.1 christos static CORE_ADDR
581 1.1 christos sparc32_frame_align (struct gdbarch *gdbarch, CORE_ADDR address)
582 1.1 christos {
583 1.1 christos /* The ABI requires double-word alignment. */
584 1.1 christos return address & ~0x7;
585 1.1 christos }
586 1.1 christos
587 1.1 christos static CORE_ADDR
588 1.1 christos sparc32_push_dummy_code (struct gdbarch *gdbarch, CORE_ADDR sp,
589 1.1 christos CORE_ADDR funcaddr,
590 1.1 christos struct value **args, int nargs,
591 1.1 christos struct type *value_type,
592 1.1 christos CORE_ADDR *real_pc, CORE_ADDR *bp_addr,
593 1.1 christos struct regcache *regcache)
594 1.1 christos {
595 1.1 christos enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
596 1.1 christos
597 1.1 christos *bp_addr = sp - 4;
598 1.1 christos *real_pc = funcaddr;
599 1.1 christos
600 1.1 christos if (using_struct_return (gdbarch, NULL, value_type))
601 1.10 christos {
602 1.1 christos gdb_byte buf[4];
603 1.1 christos
604 1.1 christos /* This is an UNIMP instruction. */
605 1.1 christos store_unsigned_integer (buf, 4, byte_order,
606 1.1 christos value_type->length () & 0x1fff);
607 1.1 christos write_memory (sp - 8, buf, 4);
608 1.1 christos return sp - 8;
609 1.1 christos }
610 1.1 christos
611 1.1 christos return sp - 4;
612 1.8 christos }
613 1.8 christos
614 1.1 christos static CORE_ADDR
615 1.8 christos sparc32_store_arguments (struct regcache *regcache, int nargs,
616 1.1 christos struct value **args, CORE_ADDR sp,
617 1.1 christos function_call_return_method return_method,
618 1.1 christos CORE_ADDR struct_addr)
619 1.1 christos {
620 1.1 christos struct gdbarch *gdbarch = regcache->arch ();
621 1.1 christos enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
622 1.1 christos /* Number of words in the "parameter array". */
623 1.1 christos int num_elements = 0;
624 1.11 christos int element = 0;
625 1.10 christos int i;
626 1.1 christos
627 1.8 christos for (i = 0; i < nargs; i++)
628 1.1 christos {
629 1.1 christos struct type *type = args[i]->type ();
630 1.1 christos int len = type->length ();
631 1.1 christos
632 1.1 christos if (sparc_arg_by_memory_p (type))
633 1.10 christos {
634 1.1 christos /* Structure, Union and Quad-Precision Arguments. */
635 1.1 christos sp -= len;
636 1.11 christos
637 1.1 christos /* Use doubleword alignment for these values. That's always
638 1.1 christos correct, and wasting a few bytes shouldn't be a problem. */
639 1.1 christos sp &= ~0x7;
640 1.1 christos
641 1.1 christos write_memory (sp, args[i]->contents ().data (), len);
642 1.1 christos args[i] = value_from_pointer (lookup_pointer_type (type), sp);
643 1.1 christos num_elements++;
644 1.1 christos }
645 1.1 christos else if (sparc_floating_p (type))
646 1.1 christos {
647 1.1 christos /* Floating arguments. */
648 1.8 christos gdb_assert (len == 4 || len == 8);
649 1.1 christos num_elements += (len / 4);
650 1.1 christos }
651 1.1 christos else
652 1.1 christos {
653 1.1 christos /* Arguments passed via the General Purpose Registers. */
654 1.7 christos num_elements += ((len + 3) / 4);
655 1.1 christos }
656 1.1 christos }
657 1.1 christos
658 1.1 christos /* Always allocate at least six words. */
659 1.1 christos sp -= std::max (6, num_elements) * 4;
660 1.1 christos
661 1.1 christos /* The psABI says that "Software convention requires space for the
662 1.1 christos struct/union return value pointer, even if the word is unused." */
663 1.1 christos sp -= 4;
664 1.1 christos
665 1.1 christos /* The psABI says that "Although software convention and the
666 1.1 christos operating system require every stack frame to be doubleword
667 1.11 christos aligned." */
668 1.11 christos sp &= ~0x7;
669 1.10 christos
670 1.8 christos for (i = 0; i < nargs; i++)
671 1.8 christos {
672 1.8 christos const bfd_byte *valbuf = args[i]->contents ().data ();
673 1.10 christos struct type *type = args[i]->type ();
674 1.10 christos int len = type->length ();
675 1.10 christos gdb_byte buf[4];
676 1.10 christos
677 1.10 christos if (len < 4)
678 1.10 christos {
679 1.1 christos memset (buf, 0, 4 - len);
680 1.1 christos memcpy (buf + 4 - len, valbuf, len);
681 1.1 christos valbuf = buf;
682 1.1 christos len = 4;
683 1.1 christos }
684 1.1 christos
685 1.1 christos gdb_assert (len == 4 || len == 8);
686 1.8 christos
687 1.1 christos if (element < 6)
688 1.8 christos {
689 1.1 christos int regnum = SPARC_O0_REGNUM + element;
690 1.1 christos
691 1.1 christos regcache->cooked_write (regnum, valbuf);
692 1.1 christos if (len > 4 && element < 5)
693 1.1 christos regcache->cooked_write (regnum + 1, valbuf + 4);
694 1.1 christos }
695 1.1 christos
696 1.1 christos /* Always store the argument in memory. */
697 1.1 christos write_memory (sp + 4 + element * 4, valbuf, len);
698 1.8 christos element += len / 4;
699 1.1 christos }
700 1.1 christos
701 1.1 christos gdb_assert (element == num_elements);
702 1.1 christos
703 1.1 christos if (return_method == return_method_struct)
704 1.1 christos {
705 1.1 christos gdb_byte buf[4];
706 1.1 christos
707 1.1 christos store_unsigned_integer (buf, 4, byte_order, struct_addr);
708 1.1 christos write_memory (sp, buf, 4);
709 1.1 christos }
710 1.1 christos
711 1.1 christos return sp;
712 1.1 christos }
713 1.8 christos
714 1.8 christos static CORE_ADDR
715 1.1 christos sparc32_push_dummy_call (struct gdbarch *gdbarch, struct value *function,
716 1.8 christos struct regcache *regcache, CORE_ADDR bp_addr,
717 1.8 christos int nargs, struct value **args, CORE_ADDR sp,
718 1.1 christos function_call_return_method return_method,
719 1.1 christos CORE_ADDR struct_addr)
720 1.1 christos {
721 1.1 christos CORE_ADDR call_pc = (return_method == return_method_struct
722 1.1 christos ? (bp_addr - 12) : (bp_addr - 8));
723 1.8 christos
724 1.8 christos /* Set return address. */
725 1.1 christos regcache_cooked_write_unsigned (regcache, SPARC_O7_REGNUM, call_pc);
726 1.1 christos
727 1.1 christos /* Set up function arguments. */
728 1.1 christos sp = sparc32_store_arguments (regcache, nargs, args, sp, return_method,
729 1.1 christos struct_addr);
730 1.1 christos
731 1.1 christos /* Allocate the 16-word window save area. */
732 1.1 christos sp -= 16 * 4;
733 1.1 christos
734 1.1 christos /* Stack should be doubleword aligned at this point. */
735 1.1 christos gdb_assert (sp % 8 == 0);
736 1.1 christos
737 1.1 christos /* Finally, update the stack pointer. */
738 1.1 christos regcache_cooked_write_unsigned (regcache, SPARC_SP_REGNUM, sp);
739 1.1 christos
740 1.1 christos return sp;
741 1.1 christos }
742 1.1 christos
743 1.1 christos
745 1.1 christos /* Use the program counter to determine the contents and size of a
746 1.7 christos breakpoint instruction. Return a pointer to a string of bytes that
747 1.1 christos encode a breakpoint instruction, store the length of the string in
748 1.1 christos *LEN and optionally adjust *PC to point to the correct memory
749 1.1 christos location for inserting the breakpoint. */
750 1.1 christos constexpr gdb_byte sparc_break_insn[] = { 0x91, 0xd0, 0x20, 0x01 };
751 1.1 christos
752 1.1 christos typedef BP_MANIPULATION (sparc_break_insn) sparc_breakpoint;
753 1.1 christos
754 1.1 christos
756 1.1 christos /* Allocate and initialize a frame cache. */
757 1.1 christos
758 1.1 christos static struct sparc_frame_cache *
759 1.1 christos sparc_alloc_frame_cache (void)
760 1.1 christos {
761 1.1 christos struct sparc_frame_cache *cache;
762 1.1 christos
763 1.1 christos cache = FRAME_OBSTACK_ZALLOC (struct sparc_frame_cache);
764 1.1 christos
765 1.1 christos /* Base address. */
766 1.1 christos cache->base = 0;
767 1.1 christos cache->pc = 0;
768 1.1 christos
769 1.1 christos /* Frameless until proven otherwise. */
770 1.1 christos cache->frameless_p = 1;
771 1.1 christos cache->frame_offset = 0;
772 1.12 christos cache->saved_regs_mask = 0;
773 1.1 christos cache->copied_regs_mask = 0;
774 1.1 christos cache->struct_return_p = 0;
775 1.1 christos
776 1.1 christos return cache;
777 1.1 christos }
778 1.1 christos
779 1.1 christos /* GCC generates several well-known sequences of instructions at the beginning
780 1.1 christos of each function prologue when compiling with -fstack-check. If one of
781 1.1 christos such sequences starts at START_PC, then return the address of the
782 1.1 christos instruction immediately past this sequence. Otherwise, return START_PC. */
783 1.1 christos
784 1.1 christos static CORE_ADDR
785 1.1 christos sparc_skip_stack_check (const CORE_ADDR start_pc)
786 1.1 christos {
787 1.10 christos CORE_ADDR pc = start_pc;
788 1.10 christos unsigned long insn;
789 1.1 christos int probing_loop = 0;
790 1.1 christos
791 1.1 christos /* With GCC, all stack checking sequences begin with the same two
792 1.10 christos instructions, plus an optional one in the case of a probing loop:
793 1.10 christos
794 1.10 christos sethi <some immediate>, %g1
795 1.1 christos sub %sp, %g1, %g1
796 1.1 christos
797 1.1 christos or:
798 1.10 christos
799 1.10 christos sethi <some immediate>, %g1
800 1.10 christos sethi <some immediate>, %g4
801 1.1 christos sub %sp, %g1, %g1
802 1.1 christos
803 1.1 christos or:
804 1.1 christos
805 1.1 christos sethi <some immediate>, %g1
806 1.1 christos sub %sp, %g1, %g1
807 1.1 christos sethi <some immediate>, %g4
808 1.1 christos
809 1.1 christos If the optional instruction is found (setting g4), assume that a
810 1.1 christos probing loop will follow. */
811 1.1 christos
812 1.1 christos /* sethi <some immediate>, %g1 */
813 1.1 christos insn = sparc_fetch_instruction (pc);
814 1.1 christos pc = pc + 4;
815 1.1 christos if (!(X_OP (insn) == 0 && X_OP2 (insn) == 0x4 && X_RD (insn) == 1))
816 1.1 christos return start_pc;
817 1.1 christos
818 1.1 christos /* optional: sethi <some immediate>, %g4 */
819 1.1 christos insn = sparc_fetch_instruction (pc);
820 1.1 christos pc = pc + 4;
821 1.1 christos if (X_OP (insn) == 0 && X_OP2 (insn) == 0x4 && X_RD (insn) == 4)
822 1.1 christos {
823 1.10 christos probing_loop = 1;
824 1.1 christos insn = sparc_fetch_instruction (pc);
825 1.1 christos pc = pc + 4;
826 1.1 christos }
827 1.1 christos
828 1.1 christos /* sub %sp, %g1, %g1 */
829 1.1 christos if (!(X_OP (insn) == 2 && X_OP3 (insn) == 0x4 && !X_I(insn)
830 1.1 christos && X_RD (insn) == 1 && X_RS1 (insn) == 14 && X_RS2 (insn) == 1))
831 1.1 christos return start_pc;
832 1.1 christos
833 1.1 christos insn = sparc_fetch_instruction (pc);
834 1.1 christos pc = pc + 4;
835 1.1 christos
836 1.1 christos /* optional: sethi <some immediate>, %g4 */
837 1.1 christos if (X_OP (insn) == 0 && X_OP2 (insn) == 0x4 && X_RD (insn) == 4)
838 1.10 christos {
839 1.10 christos probing_loop = 1;
840 1.1 christos insn = sparc_fetch_instruction (pc);
841 1.1 christos pc = pc + 4;
842 1.1 christos }
843 1.1 christos
844 1.1 christos /* First possible sequence:
845 1.1 christos [first two instructions above]
846 1.1 christos clr [%g1 - some immediate] */
847 1.1 christos
848 1.1 christos /* clr [%g1 - some immediate] */
849 1.1 christos if (X_OP (insn) == 3 && X_OP3(insn) == 0x4 && X_I(insn)
850 1.10 christos && X_RS1 (insn) == 1 && X_RD (insn) == 0)
851 1.10 christos {
852 1.10 christos /* Valid stack-check sequence, return the new PC. */
853 1.10 christos return pc;
854 1.10 christos }
855 1.10 christos
856 1.1 christos /* Second possible sequence: A small number of probes.
857 1.1 christos [first two instructions above]
858 1.1 christos clr [%g1]
859 1.1 christos add %g1, -<some immediate>, %g1
860 1.1 christos clr [%g1]
861 1.1 christos [repeat the two instructions above any (small) number of times]
862 1.10 christos clr [%g1 - some immediate] */
863 1.10 christos
864 1.10 christos /* clr [%g1] */
865 1.10 christos else if (X_OP (insn) == 3 && X_OP3(insn) == 0x4 && !X_I(insn)
866 1.10 christos && X_RS1 (insn) == 1 && X_RD (insn) == 0)
867 1.10 christos {
868 1.10 christos while (1)
869 1.10 christos {
870 1.10 christos /* add %g1, -<some immediate>, %g1 */
871 1.10 christos insn = sparc_fetch_instruction (pc);
872 1.10 christos pc = pc + 4;
873 1.10 christos if (!(X_OP (insn) == 2 && X_OP3(insn) == 0 && X_I(insn)
874 1.10 christos && X_RS1 (insn) == 1 && X_RD (insn) == 1))
875 1.10 christos break;
876 1.10 christos
877 1.1 christos /* clr [%g1] */
878 1.1 christos insn = sparc_fetch_instruction (pc);
879 1.1 christos pc = pc + 4;
880 1.10 christos if (!(X_OP (insn) == 3 && X_OP3(insn) == 0x4 && !X_I(insn)
881 1.10 christos && X_RD (insn) == 0 && X_RS1 (insn) == 1))
882 1.1 christos return start_pc;
883 1.1 christos }
884 1.1 christos
885 1.1 christos /* clr [%g1 - some immediate] */
886 1.1 christos if (!(X_OP (insn) == 3 && X_OP3(insn) == 0x4 && X_I(insn)
887 1.1 christos && X_RS1 (insn) == 1 && X_RD (insn) == 0))
888 1.10 christos return start_pc;
889 1.10 christos
890 1.10 christos /* We found a valid stack-check sequence, return the new PC. */
891 1.10 christos return pc;
892 1.10 christos }
893 1.10 christos
894 1.10 christos /* Third sequence: A probing loop.
895 1.1 christos [first three instructions above]
896 1.1 christos sub %g1, %g4, %g4
897 1.1 christos cmp %g1, %g4
898 1.10 christos be <disp>
899 1.1 christos add %g1, -<some immediate>, %g1
900 1.1 christos ba <disp>
901 1.1 christos clr [%g1]
902 1.1 christos
903 1.1 christos And an optional last probe for the remainder:
904 1.10 christos
905 1.10 christos clr [%g4 - some immediate] */
906 1.1 christos
907 1.1 christos if (probing_loop)
908 1.1 christos {
909 1.1 christos /* sub %g1, %g4, %g4 */
910 1.1 christos if (!(X_OP (insn) == 2 && X_OP3 (insn) == 0x4 && !X_I(insn)
911 1.10 christos && X_RD (insn) == 4 && X_RS1 (insn) == 1 && X_RS2 (insn) == 4))
912 1.10 christos return start_pc;
913 1.1 christos
914 1.1 christos /* cmp %g1, %g4 */
915 1.1 christos insn = sparc_fetch_instruction (pc);
916 1.1 christos pc = pc + 4;
917 1.1 christos if (!(X_OP (insn) == 2 && X_OP3 (insn) == 0x14 && !X_I(insn)
918 1.10 christos && X_RD (insn) == 0 && X_RS1 (insn) == 1 && X_RS2 (insn) == 4))
919 1.1 christos return start_pc;
920 1.1 christos
921 1.1 christos /* be <disp> */
922 1.1 christos insn = sparc_fetch_instruction (pc);
923 1.1 christos pc = pc + 4;
924 1.10 christos if (!(X_OP (insn) == 0 && X_COND (insn) == 0x1))
925 1.10 christos return start_pc;
926 1.1 christos
927 1.1 christos /* add %g1, -<some immediate>, %g1 */
928 1.1 christos insn = sparc_fetch_instruction (pc);
929 1.1 christos pc = pc + 4;
930 1.1 christos if (!(X_OP (insn) == 2 && X_OP3(insn) == 0 && X_I(insn)
931 1.10 christos && X_RS1 (insn) == 1 && X_RD (insn) == 1))
932 1.1 christos return start_pc;
933 1.1 christos
934 1.1 christos /* ba <disp> */
935 1.1 christos insn = sparc_fetch_instruction (pc);
936 1.1 christos pc = pc + 4;
937 1.10 christos if (!(X_OP (insn) == 0 && X_COND (insn) == 0x8))
938 1.1 christos return start_pc;
939 1.10 christos
940 1.1 christos /* clr [%g1] (st %g0, [%g1] or st %g0, [%g1+0]) */
941 1.1 christos insn = sparc_fetch_instruction (pc);
942 1.1 christos pc = pc + 4;
943 1.1 christos if (!(X_OP (insn) == 3 && X_OP3(insn) == 0x4
944 1.1 christos && X_RD (insn) == 0 && X_RS1 (insn) == 1
945 1.1 christos && (!X_I(insn) || X_SIMM13 (insn) == 0)))
946 1.1 christos return start_pc;
947 1.10 christos
948 1.10 christos /* We found a valid stack-check sequence, return the new PC. */
949 1.1 christos
950 1.1 christos /* optional: clr [%g4 - some immediate] */
951 1.1 christos insn = sparc_fetch_instruction (pc);
952 1.1 christos pc = pc + 4;
953 1.1 christos if (!(X_OP (insn) == 3 && X_OP3(insn) == 0x4 && X_I(insn)
954 1.1 christos && X_RS1 (insn) == 4 && X_RD (insn) == 0))
955 1.1 christos return pc - 4;
956 1.1 christos else
957 1.1 christos return pc;
958 1.1 christos }
959 1.1 christos
960 1.1 christos /* No stack check code in our prologue, return the start_pc. */
961 1.1 christos return start_pc;
962 1.1 christos }
963 1.1 christos
964 1.1 christos /* Record the effect of a SAVE instruction on CACHE. */
965 1.1 christos
966 1.1 christos void
967 1.1 christos sparc_record_save_insn (struct sparc_frame_cache *cache)
968 1.1 christos {
969 1.1 christos /* The frame is set up. */
970 1.1 christos cache->frameless_p = 0;
971 1.1 christos
972 1.1 christos /* The frame pointer contains the CFA. */
973 1.1 christos cache->frame_offset = 0;
974 1.1 christos
975 1.1 christos /* The `local' and `in' registers are all saved. */
976 1.1 christos cache->saved_regs_mask = 0xffff;
977 1.1 christos
978 1.1 christos /* The `out' registers are all renamed. */
979 1.1 christos cache->copied_regs_mask = 0xff;
980 1.1 christos }
981 1.1 christos
982 1.1 christos /* Do a full analysis of the prologue at PC and update CACHE accordingly.
983 1.1 christos Bail out early if CURRENT_PC is reached. Return the address where
984 1.1 christos the analysis stopped.
985 1.1 christos
986 1.10 christos We handle both the traditional register window model and the single
987 1.1 christos register window (aka flat) model. */
988 1.1 christos
989 1.1 christos CORE_ADDR
990 1.1 christos sparc_analyze_prologue (struct gdbarch *gdbarch, CORE_ADDR pc,
991 1.1 christos CORE_ADDR current_pc, struct sparc_frame_cache *cache)
992 1.1 christos {
993 1.1 christos sparc_gdbarch_tdep *tdep = gdbarch_tdep<sparc_gdbarch_tdep> (gdbarch);
994 1.1 christos unsigned long insn;
995 1.1 christos int offset = 0;
996 1.1 christos int dest = -1;
997 1.1 christos
998 1.1 christos pc = sparc_skip_stack_check (pc);
999 1.1 christos
1000 1.1 christos if (current_pc <= pc)
1001 1.1 christos return current_pc;
1002 1.1 christos
1003 1.1 christos /* We have to handle to "Procedure Linkage Table" (PLT) special. On
1004 1.1 christos SPARC the linker usually defines a symbol (typically
1005 1.1 christos _PROCEDURE_LINKAGE_TABLE_) at the start of the .plt section.
1006 1.1 christos This symbol makes us end up here with PC pointing at the start of
1007 1.1 christos the PLT and CURRENT_PC probably pointing at a PLT entry. If we
1008 1.1 christos would do our normal prologue analysis, we would probably conclude
1009 1.1 christos that we've got a frame when in reality we don't, since the
1010 1.1 christos dynamic linker patches up the first PLT with some code that
1011 1.1 christos starts with a SAVE instruction. Patch up PC such that it points
1012 1.1 christos at the start of our PLT entry. */
1013 1.1 christos if (tdep->plt_entry_size > 0 && in_plt_section (current_pc))
1014 1.1 christos pc = current_pc - ((current_pc - pc) % tdep->plt_entry_size);
1015 1.1 christos
1016 1.1 christos insn = sparc_fetch_instruction (pc);
1017 1.1 christos
1018 1.1 christos /* Recognize store insns and record their sources. */
1019 1.1 christos while (X_OP (insn) == 3
1020 1.1 christos && (X_OP3 (insn) == 0x4 /* stw */
1021 1.1 christos || X_OP3 (insn) == 0x7 /* std */
1022 1.1 christos || X_OP3 (insn) == 0xe) /* stx */
1023 1.1 christos && X_RS1 (insn) == SPARC_SP_REGNUM)
1024 1.1 christos {
1025 1.1 christos int regnum = X_RD (insn);
1026 1.1 christos
1027 1.1 christos /* Recognize stores into the corresponding stack slots. */
1028 1.1 christos if (regnum >= SPARC_L0_REGNUM && regnum <= SPARC_I7_REGNUM
1029 1.1 christos && ((X_I (insn)
1030 1.1 christos && X_SIMM13 (insn) == (X_OP3 (insn) == 0xe
1031 1.1 christos ? (regnum - SPARC_L0_REGNUM) * 8 + BIAS
1032 1.1 christos : (regnum - SPARC_L0_REGNUM) * 4))
1033 1.1 christos || (!X_I (insn) && regnum == SPARC_L0_REGNUM)))
1034 1.1 christos {
1035 1.1 christos cache->saved_regs_mask |= (1 << (regnum - SPARC_L0_REGNUM));
1036 1.1 christos if (X_OP3 (insn) == 0x7)
1037 1.1 christos cache->saved_regs_mask |= (1 << (regnum + 1 - SPARC_L0_REGNUM));
1038 1.1 christos }
1039 1.1 christos
1040 1.1 christos offset += 4;
1041 1.1 christos
1042 1.1 christos insn = sparc_fetch_instruction (pc + offset);
1043 1.1 christos }
1044 1.1 christos
1045 1.1 christos /* Recognize a SETHI insn and record its destination. */
1046 1.1 christos if (X_OP (insn) == 0 && X_OP2 (insn) == 0x04)
1047 1.1 christos {
1048 1.1 christos dest = X_RD (insn);
1049 1.1 christos offset += 4;
1050 1.1 christos
1051 1.1 christos insn = sparc_fetch_instruction (pc + offset);
1052 1.1 christos }
1053 1.1 christos
1054 1.1 christos /* Allow for an arithmetic operation on DEST or %g1. */
1055 1.1 christos if (X_OP (insn) == 2 && X_I (insn)
1056 1.1 christos && (X_RD (insn) == 1 || X_RD (insn) == dest))
1057 1.1 christos {
1058 1.1 christos offset += 4;
1059 1.1 christos
1060 1.1 christos insn = sparc_fetch_instruction (pc + offset);
1061 1.1 christos }
1062 1.1 christos
1063 1.1 christos /* Check for the SAVE instruction that sets up the frame. */
1064 1.1 christos if (X_OP (insn) == 2 && X_OP3 (insn) == 0x3c)
1065 1.1 christos {
1066 1.1 christos sparc_record_save_insn (cache);
1067 1.1 christos offset += 4;
1068 1.1 christos return pc + offset;
1069 1.1 christos }
1070 1.1 christos
1071 1.1 christos /* Check for an arithmetic operation on %sp. */
1072 1.1 christos if (X_OP (insn) == 2
1073 1.1 christos && (X_OP3 (insn) == 0 || X_OP3 (insn) == 0x4)
1074 1.1 christos && X_RS1 (insn) == SPARC_SP_REGNUM
1075 1.1 christos && X_RD (insn) == SPARC_SP_REGNUM)
1076 1.1 christos {
1077 1.1 christos if (X_I (insn))
1078 1.1 christos {
1079 1.1 christos cache->frame_offset = X_SIMM13 (insn);
1080 1.1 christos if (X_OP3 (insn) == 0)
1081 1.1 christos cache->frame_offset = -cache->frame_offset;
1082 1.1 christos }
1083 1.1 christos offset += 4;
1084 1.1 christos
1085 1.1 christos insn = sparc_fetch_instruction (pc + offset);
1086 1.1 christos
1087 1.1 christos /* Check for an arithmetic operation that sets up the frame. */
1088 1.1 christos if (X_OP (insn) == 2
1089 1.1 christos && (X_OP3 (insn) == 0 || X_OP3 (insn) == 0x4)
1090 1.1 christos && X_RS1 (insn) == SPARC_SP_REGNUM
1091 1.1 christos && X_RD (insn) == SPARC_FP_REGNUM)
1092 1.1 christos {
1093 1.1 christos cache->frameless_p = 0;
1094 1.1 christos cache->frame_offset = 0;
1095 1.1 christos /* We could check that the amount subtracted to %sp above is the
1096 1.1 christos same as the one added here, but this seems superfluous. */
1097 1.1 christos cache->copied_regs_mask |= 0x40;
1098 1.1 christos offset += 4;
1099 1.1 christos
1100 1.1 christos insn = sparc_fetch_instruction (pc + offset);
1101 1.1 christos }
1102 1.1 christos
1103 1.1 christos /* Check for a move (or) operation that copies the return register. */
1104 1.1 christos if (X_OP (insn) == 2
1105 1.1 christos && X_OP3 (insn) == 0x2
1106 1.1 christos && !X_I (insn)
1107 1.1 christos && X_RS1 (insn) == SPARC_G0_REGNUM
1108 1.1 christos && X_RS2 (insn) == SPARC_O7_REGNUM
1109 1.1 christos && X_RD (insn) == SPARC_I7_REGNUM)
1110 1.1 christos {
1111 1.1 christos cache->copied_regs_mask |= 0x80;
1112 1.1 christos offset += 4;
1113 1.1 christos }
1114 1.1 christos
1115 1.1 christos return pc + offset;
1116 1.1 christos }
1117 1.1 christos
1118 1.1 christos return pc;
1119 1.1 christos }
1120 1.10 christos
1121 1.1 christos /* Return PC of first real instruction of the function starting at
1122 1.1 christos START_PC. */
1123 1.1 christos
1124 1.1 christos static CORE_ADDR
1125 1.10 christos sparc32_skip_prologue (struct gdbarch *gdbarch, CORE_ADDR start_pc)
1126 1.10 christos {
1127 1.1 christos CORE_ADDR func_addr;
1128 1.10 christos struct sparc_frame_cache cache;
1129 1.10 christos
1130 1.1 christos /* This is the preferred method, find the end of the prologue by
1131 1.10 christos using the debugging information. */
1132 1.10 christos
1133 1.1 christos if (find_pc_partial_function (start_pc, NULL, &func_addr, NULL))
1134 1.1 christos {
1135 1.1 christos CORE_ADDR post_prologue_pc
1136 1.1 christos = skip_prologue_using_sal (gdbarch, func_addr);
1137 1.1 christos
1138 1.1 christos if (post_prologue_pc != 0)
1139 1.1 christos return std::max (start_pc, post_prologue_pc);
1140 1.1 christos }
1141 1.1 christos
1142 1.1 christos start_pc = sparc_analyze_prologue (gdbarch, start_pc, 0xffffffffUL, &cache);
1143 1.1 christos
1144 1.1 christos /* The psABI says that "Although the first 6 words of arguments
1145 1.1 christos reside in registers, the standard stack frame reserves space for
1146 1.1 christos them.". It also suggests that a function may use that space to
1147 1.1 christos "write incoming arguments 0 to 5" into that space, and that's
1148 1.1 christos indeed what GCC seems to be doing. In that case GCC will
1149 1.1 christos generate debug information that points to the stack slots instead
1150 1.1 christos of the registers, so we should consider the instructions that
1151 1.1 christos write out these incoming arguments onto the stack. */
1152 1.1 christos
1153 1.1 christos while (1)
1154 1.1 christos {
1155 1.1 christos unsigned long insn = sparc_fetch_instruction (start_pc);
1156 1.1 christos
1157 1.1 christos /* Recognize instructions that store incoming arguments into the
1158 1.1 christos corresponding stack slots. */
1159 1.1 christos if (X_OP (insn) == 3 && (X_OP3 (insn) & 0x3c) == 0x04
1160 1.1 christos && X_I (insn) && X_RS1 (insn) == SPARC_FP_REGNUM)
1161 1.1 christos {
1162 1.1 christos int regnum = X_RD (insn);
1163 1.1 christos
1164 1.1 christos /* Case of arguments still in %o[0..5]. */
1165 1.1 christos if (regnum >= SPARC_O0_REGNUM && regnum <= SPARC_O5_REGNUM
1166 1.1 christos && !(cache.copied_regs_mask & (1 << (regnum - SPARC_O0_REGNUM)))
1167 1.1 christos && X_SIMM13 (insn) == 68 + (regnum - SPARC_O0_REGNUM) * 4)
1168 1.1 christos {
1169 1.1 christos start_pc += 4;
1170 1.1 christos continue;
1171 1.1 christos }
1172 1.1 christos
1173 1.1 christos /* Case of arguments copied into %i[0..5]. */
1174 1.1 christos if (regnum >= SPARC_I0_REGNUM && regnum <= SPARC_I5_REGNUM
1175 1.1 christos && (cache.copied_regs_mask & (1 << (regnum - SPARC_I0_REGNUM)))
1176 1.1 christos && X_SIMM13 (insn) == 68 + (regnum - SPARC_I0_REGNUM) * 4)
1177 1.1 christos {
1178 1.1 christos start_pc += 4;
1179 1.1 christos continue;
1180 1.1 christos }
1181 1.1 christos }
1182 1.1 christos
1183 1.1 christos break;
1184 1.1 christos }
1185 1.11 christos
1186 1.1 christos return start_pc;
1187 1.1 christos }
1188 1.1 christos
1189 1.1 christos /* Normal frames. */
1190 1.6 christos
1191 1.1 christos struct sparc_frame_cache *
1192 1.1 christos sparc_frame_cache (const frame_info_ptr &this_frame, void **this_cache)
1193 1.1 christos {
1194 1.1 christos struct sparc_frame_cache *cache;
1195 1.1 christos
1196 1.1 christos if (*this_cache)
1197 1.1 christos return (struct sparc_frame_cache *) *this_cache;
1198 1.1 christos
1199 1.1 christos cache = sparc_alloc_frame_cache ();
1200 1.1 christos *this_cache = cache;
1201 1.1 christos
1202 1.1 christos cache->pc = get_frame_func (this_frame);
1203 1.10 christos if (cache->pc != 0)
1204 1.10 christos sparc_analyze_prologue (get_frame_arch (this_frame), cache->pc,
1205 1.1 christos get_frame_pc (this_frame), cache);
1206 1.10 christos
1207 1.1 christos if (cache->frameless_p)
1208 1.1 christos {
1209 1.1 christos /* This function is frameless, so %fp (%i6) holds the frame
1210 1.1 christos pointer for our calling frame. Use %sp (%o6) as this frame's
1211 1.10 christos base address. */
1212 1.1 christos cache->base =
1213 1.1 christos get_frame_register_unsigned (this_frame, SPARC_SP_REGNUM);
1214 1.1 christos }
1215 1.1 christos else
1216 1.1 christos {
1217 1.1 christos /* For normal frames, %fp (%i6) holds the frame pointer, the
1218 1.1 christos base address for the current stack frame. */
1219 1.1 christos cache->base =
1220 1.1 christos get_frame_register_unsigned (this_frame, SPARC_FP_REGNUM);
1221 1.1 christos }
1222 1.1 christos
1223 1.1 christos cache->base += cache->frame_offset;
1224 1.1 christos
1225 1.1 christos if (cache->base & 1)
1226 1.1 christos cache->base += BIAS;
1227 1.10 christos
1228 1.9 christos return cache;
1229 1.1 christos }
1230 1.1 christos
1231 1.1 christos static int
1232 1.10 christos sparc32_struct_return_from_sym (struct symbol *sym)
1233 1.1 christos {
1234 1.10 christos struct type *type = check_typedef (sym->type ());
1235 1.1 christos enum type_code code = type->code ();
1236 1.1 christos
1237 1.1 christos if (code == TYPE_CODE_FUNC || code == TYPE_CODE_METHOD)
1238 1.1 christos {
1239 1.1 christos type = check_typedef (type->target_type ());
1240 1.1 christos if (sparc_structure_or_union_p (type)
1241 1.1 christos || (sparc_floating_p (type) && type->length () == 16))
1242 1.11 christos return 1;
1243 1.1 christos }
1244 1.1 christos
1245 1.1 christos return 0;
1246 1.1 christos }
1247 1.1 christos
1248 1.6 christos struct sparc_frame_cache *
1249 1.1 christos sparc32_frame_cache (const frame_info_ptr &this_frame, void **this_cache)
1250 1.1 christos {
1251 1.1 christos struct sparc_frame_cache *cache;
1252 1.1 christos struct symbol *sym;
1253 1.1 christos
1254 1.1 christos if (*this_cache)
1255 1.1 christos return (struct sparc_frame_cache *) *this_cache;
1256 1.1 christos
1257 1.1 christos cache = sparc_frame_cache (this_frame, this_cache);
1258 1.1 christos
1259 1.1 christos sym = find_pc_function (cache->pc);
1260 1.10 christos if (sym)
1261 1.10 christos {
1262 1.10 christos cache->struct_return_p = sparc32_struct_return_from_sym (sym);
1263 1.10 christos }
1264 1.10 christos else
1265 1.1 christos {
1266 1.1 christos /* There is no debugging information for this function to
1267 1.1 christos help us determine whether this function returns a struct
1268 1.1 christos or not. So we rely on another heuristic which is to check
1269 1.1 christos the instruction at the return address and see if this is
1270 1.1 christos an "unimp" instruction. If it is, then it is a struct-return
1271 1.10 christos function. */
1272 1.1 christos CORE_ADDR pc;
1273 1.1 christos int regnum =
1274 1.1 christos (cache->copied_regs_mask & 0x80) ? SPARC_I7_REGNUM : SPARC_O7_REGNUM;
1275 1.1 christos
1276 1.1 christos pc = get_frame_register_unsigned (this_frame, regnum) + 8;
1277 1.1 christos if (sparc_is_unimp_insn (pc))
1278 1.11 christos cache->struct_return_p = 1;
1279 1.1 christos }
1280 1.1 christos
1281 1.1 christos return cache;
1282 1.1 christos }
1283 1.1 christos
1284 1.1 christos static void
1285 1.1 christos sparc32_frame_this_id (const frame_info_ptr &this_frame, void **this_cache,
1286 1.1 christos struct frame_id *this_id)
1287 1.1 christos {
1288 1.1 christos struct sparc_frame_cache *cache =
1289 1.1 christos sparc32_frame_cache (this_frame, this_cache);
1290 1.1 christos
1291 1.1 christos /* This marks the outermost frame. */
1292 1.11 christos if (cache->base == 0)
1293 1.1 christos return;
1294 1.1 christos
1295 1.1 christos (*this_id) = frame_id_build (cache->base, cache->pc);
1296 1.1 christos }
1297 1.1 christos
1298 1.1 christos static struct value *
1299 1.1 christos sparc32_frame_prev_register (const frame_info_ptr &this_frame,
1300 1.1 christos void **this_cache, int regnum)
1301 1.1 christos {
1302 1.1 christos struct gdbarch *gdbarch = get_frame_arch (this_frame);
1303 1.1 christos struct sparc_frame_cache *cache =
1304 1.1 christos sparc32_frame_cache (this_frame, this_cache);
1305 1.1 christos
1306 1.1 christos if (regnum == SPARC32_PC_REGNUM || regnum == SPARC32_NPC_REGNUM)
1307 1.1 christos {
1308 1.1 christos CORE_ADDR pc = (regnum == SPARC32_NPC_REGNUM) ? 4 : 0;
1309 1.1 christos
1310 1.1 christos /* If this functions has a Structure, Union or Quad-Precision
1311 1.1 christos return value, we have to skip the UNIMP instruction that encodes
1312 1.1 christos the size of the structure. */
1313 1.1 christos if (cache->struct_return_p)
1314 1.1 christos pc += 4;
1315 1.1 christos
1316 1.1 christos regnum =
1317 1.1 christos (cache->copied_regs_mask & 0x80) ? SPARC_I7_REGNUM : SPARC_O7_REGNUM;
1318 1.1 christos pc += get_frame_register_unsigned (this_frame, regnum) + 8;
1319 1.1 christos return frame_unwind_got_constant (this_frame, regnum, pc);
1320 1.1 christos }
1321 1.10 christos
1322 1.10 christos /* Handle StackGhost. */
1323 1.1 christos {
1324 1.10 christos ULONGEST wcookie = sparc_fetch_wcookie (gdbarch);
1325 1.10 christos
1326 1.10 christos if (wcookie != 0 && !cache->frameless_p && regnum == SPARC_I7_REGNUM)
1327 1.1 christos {
1328 1.1 christos CORE_ADDR addr = cache->base + (regnum - SPARC_L0_REGNUM) * 4;
1329 1.1 christos ULONGEST i7;
1330 1.1 christos
1331 1.1 christos /* Read the value in from memory. */
1332 1.1 christos i7 = get_frame_memory_unsigned (this_frame, addr, 4);
1333 1.1 christos return frame_unwind_got_constant (this_frame, regnum, i7 ^ wcookie);
1334 1.1 christos }
1335 1.1 christos }
1336 1.1 christos
1337 1.1 christos /* The previous frame's `local' and `in' registers may have been saved
1338 1.1 christos in the register save area. */
1339 1.1 christos if (regnum >= SPARC_L0_REGNUM && regnum <= SPARC_I7_REGNUM
1340 1.1 christos && (cache->saved_regs_mask & (1 << (regnum - SPARC_L0_REGNUM))))
1341 1.1 christos {
1342 1.1 christos CORE_ADDR addr = cache->base + (regnum - SPARC_L0_REGNUM) * 4;
1343 1.1 christos
1344 1.1 christos return frame_unwind_got_memory (this_frame, regnum, addr);
1345 1.1 christos }
1346 1.1 christos
1347 1.1 christos /* The previous frame's `out' registers may be accessible as the current
1348 1.1 christos frame's `in' registers. */
1349 1.1 christos if (regnum >= SPARC_O0_REGNUM && regnum <= SPARC_O7_REGNUM
1350 1.1 christos && (cache->copied_regs_mask & (1 << (regnum - SPARC_O0_REGNUM))))
1351 1.10 christos regnum += (SPARC_I0_REGNUM - SPARC_O0_REGNUM);
1352 1.1 christos
1353 1.1 christos return frame_unwind_got_register (this_frame, regnum, regnum);
1354 1.1 christos }
1355 1.1 christos
1356 1.1 christos static const struct frame_unwind sparc32_frame_unwind =
1357 1.1 christos {
1358 1.1 christos "sparc32 prologue",
1359 1.1 christos NORMAL_FRAME,
1360 1.1 christos default_frame_unwind_stop_reason,
1361 1.1 christos sparc32_frame_this_id,
1362 1.11 christos sparc32_frame_prev_register,
1363 1.1 christos NULL,
1364 1.1 christos default_frame_sniffer
1365 1.1 christos };
1366 1.1 christos
1367 1.1 christos
1369 1.1 christos static CORE_ADDR
1370 1.1 christos sparc32_frame_base_address (const frame_info_ptr &this_frame, void **this_cache)
1371 1.1 christos {
1372 1.1 christos struct sparc_frame_cache *cache =
1373 1.1 christos sparc32_frame_cache (this_frame, this_cache);
1374 1.1 christos
1375 1.1 christos return cache->base;
1376 1.1 christos }
1377 1.1 christos
1378 1.1 christos static const struct frame_base sparc32_frame_base =
1379 1.11 christos {
1380 1.1 christos &sparc32_frame_unwind,
1381 1.1 christos sparc32_frame_base_address,
1382 1.1 christos sparc32_frame_base_address,
1383 1.1 christos sparc32_frame_base_address
1384 1.1 christos };
1385 1.1 christos
1386 1.1 christos static struct frame_id
1387 1.1 christos sparc_dummy_id (struct gdbarch *gdbarch, const frame_info_ptr &this_frame)
1388 1.1 christos {
1389 1.1 christos CORE_ADDR sp;
1390 1.1 christos
1391 1.1 christos sp = get_frame_register_unsigned (this_frame, SPARC_SP_REGNUM);
1392 1.1 christos if (sp & 1)
1393 1.1 christos sp += BIAS;
1394 1.1 christos return frame_id_build (sp, get_frame_pc (this_frame));
1395 1.1 christos }
1396 1.1 christos
1397 1.10 christos
1399 1.1 christos /* Extract a function return value of TYPE from REGCACHE, and copy
1400 1.8 christos that into VALBUF. */
1401 1.1 christos
1402 1.8 christos static void
1403 1.9 christos sparc32_extract_return_value (struct type *type, struct regcache *regcache,
1404 1.1 christos gdb_byte *valbuf)
1405 1.1 christos {
1406 1.8 christos int len = type->length ();
1407 1.1 christos gdb_byte buf[32];
1408 1.8 christos
1409 1.1 christos gdb_assert (!sparc_structure_return_p (type));
1410 1.1 christos
1411 1.8 christos if (sparc_floating_p (type) || sparc_complex_floating_p (type)
1412 1.8 christos || type->code () == TYPE_CODE_ARRAY)
1413 1.1 christos {
1414 1.1 christos /* Floating return values. */
1415 1.1 christos regcache->cooked_read (SPARC_F0_REGNUM, buf);
1416 1.8 christos if (len > 4)
1417 1.8 christos regcache->cooked_read (SPARC_F1_REGNUM, buf + 4);
1418 1.8 christos if (len > 8)
1419 1.8 christos {
1420 1.1 christos regcache->cooked_read (SPARC_F2_REGNUM, buf + 8);
1421 1.1 christos regcache->cooked_read (SPARC_F3_REGNUM, buf + 12);
1422 1.1 christos }
1423 1.1 christos if (len > 16)
1424 1.1 christos {
1425 1.1 christos regcache->cooked_read (SPARC_F4_REGNUM, buf + 16);
1426 1.1 christos regcache->cooked_read (SPARC_F5_REGNUM, buf + 20);
1427 1.1 christos regcache->cooked_read (SPARC_F6_REGNUM, buf + 24);
1428 1.8 christos regcache->cooked_read (SPARC_F7_REGNUM, buf + 28);
1429 1.1 christos }
1430 1.1 christos memcpy (valbuf, buf, len);
1431 1.8 christos }
1432 1.1 christos else
1433 1.1 christos {
1434 1.1 christos /* Integral and pointer return values. */
1435 1.1 christos gdb_assert (sparc_integral_or_pointer_p (type));
1436 1.1 christos
1437 1.1 christos regcache->cooked_read (SPARC_O0_REGNUM, buf);
1438 1.1 christos if (len > 4)
1439 1.1 christos {
1440 1.1 christos regcache->cooked_read (SPARC_O1_REGNUM, buf + 4);
1441 1.1 christos gdb_assert (len == 8);
1442 1.1 christos memcpy (valbuf, buf, 8);
1443 1.1 christos }
1444 1.1 christos else
1445 1.1 christos {
1446 1.1 christos /* Just stripping off any unused bytes should preserve the
1447 1.1 christos signed-ness just fine. */
1448 1.1 christos memcpy (valbuf, buf + 4 - len, len);
1449 1.1 christos }
1450 1.1 christos }
1451 1.10 christos }
1452 1.8 christos
1453 1.1 christos /* Store the function return value of type TYPE from VALBUF into
1454 1.8 christos REGCACHE. */
1455 1.1 christos
1456 1.1 christos static void
1457 1.1 christos sparc32_store_return_value (struct type *type, struct regcache *regcache,
1458 1.1 christos const gdb_byte *valbuf)
1459 1.1 christos {
1460 1.8 christos int len = type->length ();
1461 1.1 christos gdb_byte buf[32];
1462 1.8 christos
1463 1.1 christos gdb_assert (!sparc_structure_return_p (type));
1464 1.1 christos
1465 1.8 christos if (sparc_floating_p (type) || sparc_complex_floating_p (type))
1466 1.8 christos {
1467 1.1 christos /* Floating return values. */
1468 1.1 christos memcpy (buf, valbuf, len);
1469 1.1 christos regcache->cooked_write (SPARC_F0_REGNUM, buf);
1470 1.8 christos if (len > 4)
1471 1.8 christos regcache->cooked_write (SPARC_F1_REGNUM, buf + 4);
1472 1.8 christos if (len > 8)
1473 1.8 christos {
1474 1.1 christos regcache->cooked_write (SPARC_F2_REGNUM, buf + 8);
1475 1.1 christos regcache->cooked_write (SPARC_F3_REGNUM, buf + 12);
1476 1.1 christos }
1477 1.1 christos if (len > 16)
1478 1.1 christos {
1479 1.1 christos regcache->cooked_write (SPARC_F4_REGNUM, buf + 16);
1480 1.1 christos regcache->cooked_write (SPARC_F5_REGNUM, buf + 20);
1481 1.1 christos regcache->cooked_write (SPARC_F6_REGNUM, buf + 24);
1482 1.1 christos regcache->cooked_write (SPARC_F7_REGNUM, buf + 28);
1483 1.1 christos }
1484 1.1 christos }
1485 1.8 christos else
1486 1.1 christos {
1487 1.1 christos /* Integral and pointer return values. */
1488 1.1 christos gdb_assert (sparc_integral_or_pointer_p (type));
1489 1.1 christos
1490 1.1 christos if (len > 4)
1491 1.1 christos {
1492 1.8 christos gdb_assert (len == 8);
1493 1.1 christos memcpy (buf, valbuf, 8);
1494 1.1 christos regcache->cooked_write (SPARC_O1_REGNUM, buf + 4);
1495 1.1 christos }
1496 1.1 christos else
1497 1.1 christos {
1498 1.1 christos /* ??? Do we need to do any sign-extension here? */
1499 1.11 christos memcpy (buf + 4 - len, valbuf, len);
1500 1.1 christos }
1501 1.1 christos regcache->cooked_write (SPARC_O0_REGNUM, buf);
1502 1.1 christos }
1503 1.1 christos }
1504 1.1 christos
1505 1.1 christos static enum return_value_convention
1506 1.1 christos sparc32_return_value (struct gdbarch *gdbarch, struct value *function,
1507 1.1 christos struct type *type, struct regcache *regcache,
1508 1.1 christos struct value **read_value, const gdb_byte *writebuf)
1509 1.1 christos {
1510 1.8 christos enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
1511 1.1 christos
1512 1.1 christos /* The psABI says that "...every stack frame reserves the word at
1513 1.1 christos %fp+64. If a function returns a structure, union, or
1514 1.1 christos quad-precision value, this word should hold the address of the
1515 1.11 christos object into which the return value should be copied." This
1516 1.1 christos guarantees that we can always find the return value, not just
1517 1.1 christos before the function returns. */
1518 1.1 christos
1519 1.11 christos if (sparc_structure_return_p (type))
1520 1.1 christos {
1521 1.1 christos ULONGEST sp;
1522 1.1 christos CORE_ADDR addr;
1523 1.1 christos
1524 1.1 christos if (read_value != nullptr)
1525 1.10 christos {
1526 1.1 christos regcache_cooked_read_unsigned (regcache, SPARC_SP_REGNUM, &sp);
1527 1.1 christos addr = read_memory_unsigned_integer (sp + 64, 4, byte_order);
1528 1.1 christos *read_value = value_at_non_lval (type, addr);
1529 1.1 christos }
1530 1.1 christos if (writebuf)
1531 1.11 christos {
1532 1.11 christos regcache_cooked_read_unsigned (regcache, SPARC_SP_REGNUM, &sp);
1533 1.11 christos addr = read_memory_unsigned_integer (sp + 64, 4, byte_order);
1534 1.11 christos write_memory (addr, writebuf, type->length ());
1535 1.11 christos }
1536 1.11 christos
1537 1.1 christos return RETURN_VALUE_ABI_PRESERVES_ADDRESS;
1538 1.1 christos }
1539 1.1 christos
1540 1.1 christos if (read_value != nullptr)
1541 1.1 christos {
1542 1.1 christos *read_value = value::allocate (type);
1543 1.1 christos gdb_byte *readbuf = (*read_value)->contents_raw ().data ();
1544 1.1 christos sparc32_extract_return_value (type, regcache, readbuf);
1545 1.1 christos }
1546 1.1 christos if (writebuf)
1547 1.10 christos sparc32_store_return_value (type, regcache, writebuf);
1548 1.1 christos
1549 1.1 christos return RETURN_VALUE_REGISTER_CONVENTION;
1550 1.1 christos }
1551 1.1 christos
1552 1.11 christos static int
1553 1.1 christos sparc32_stabs_argument_has_addr (struct gdbarch *gdbarch, struct type *type)
1554 1.1 christos {
1555 1.1 christos return (sparc_structure_or_union_p (type)
1556 1.1 christos || (sparc_floating_p (type) && type->length () == 16)
1557 1.1 christos || sparc_complex_floating_p (type));
1558 1.1 christos }
1559 1.1 christos
1560 1.1 christos static int
1561 1.1 christos sparc32_dwarf2_struct_return_p (const frame_info_ptr &this_frame)
1562 1.1 christos {
1563 1.1 christos CORE_ADDR pc = get_frame_address_in_block (this_frame);
1564 1.1 christos struct symbol *sym = find_pc_function (pc);
1565 1.11 christos
1566 1.1 christos if (sym)
1567 1.1 christos return sparc32_struct_return_from_sym (sym);
1568 1.1 christos return 0;
1569 1.1 christos }
1570 1.1 christos
1571 1.1 christos static void
1572 1.1 christos sparc32_dwarf2_frame_init_reg (struct gdbarch *gdbarch, int regnum,
1573 1.1 christos struct dwarf2_frame_state_reg *reg,
1574 1.1 christos const frame_info_ptr &this_frame)
1575 1.1 christos {
1576 1.1 christos int off;
1577 1.1 christos
1578 1.1 christos switch (regnum)
1579 1.1 christos {
1580 1.1 christos case SPARC_G0_REGNUM:
1581 1.1 christos /* Since %g0 is always zero, there is no point in saving it, and
1582 1.1 christos people will be inclined omit it from the CFI. Make sure we
1583 1.1 christos don't warn about that. */
1584 1.1 christos reg->how = DWARF2_FRAME_REG_SAME_VALUE;
1585 1.1 christos break;
1586 1.1 christos case SPARC_SP_REGNUM:
1587 1.1 christos reg->how = DWARF2_FRAME_REG_CFA;
1588 1.1 christos break;
1589 1.1 christos case SPARC32_PC_REGNUM:
1590 1.1 christos case SPARC32_NPC_REGNUM:
1591 1.1 christos reg->how = DWARF2_FRAME_REG_RA_OFFSET;
1592 1.1 christos off = 8;
1593 1.8 christos if (sparc32_dwarf2_struct_return_p (this_frame))
1594 1.8 christos off += 4;
1595 1.8 christos if (regnum == SPARC32_NPC_REGNUM)
1596 1.8 christos off += 4;
1597 1.8 christos reg->loc.offset = off;
1598 1.8 christos break;
1599 1.8 christos }
1600 1.8 christos }
1601 1.8 christos
1602 1.8 christos /* Implement the execute_dwarf_cfa_vendor_op method. */
1603 1.8 christos
1604 1.8 christos static bool
1605 1.8 christos sparc_execute_dwarf_cfa_vendor_op (struct gdbarch *gdbarch, gdb_byte op,
1606 1.8 christos struct dwarf2_frame_state *fs)
1607 1.8 christos {
1608 1.8 christos /* Only DW_CFA_GNU_window_save is expected on SPARC. */
1609 1.8 christos if (op != DW_CFA_GNU_window_save)
1610 1.8 christos return false;
1611 1.8 christos
1612 1.8 christos uint64_t reg;
1613 1.8 christos int size = register_size (gdbarch, 0);
1614 1.8 christos
1615 1.8 christos fs->regs.alloc_regs (32);
1616 1.8 christos for (reg = 8; reg < 16; reg++)
1617 1.8 christos {
1618 1.8 christos fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_REG;
1619 1.8 christos fs->regs.reg[reg].loc.reg = reg + 16;
1620 1.8 christos }
1621 1.1 christos for (reg = 16; reg < 32; reg++)
1622 1.1 christos {
1623 1.1 christos fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_OFFSET;
1624 1.1 christos fs->regs.reg[reg].loc.offset = (reg - 16) * size;
1625 1.1 christos }
1626 1.1 christos
1627 1.7 christos return true;
1628 1.1 christos }
1629 1.1 christos
1630 1.1 christos
1631 1.1 christos /* The SPARC Architecture doesn't have hardware single-step support,
1633 1.1 christos and most operating systems don't implement it either, so we provide
1634 1.1 christos software single-step mechanism. */
1635 1.1 christos
1636 1.1 christos static CORE_ADDR
1637 1.1 christos sparc_analyze_control_transfer (struct regcache *regcache,
1638 1.1 christos CORE_ADDR pc, CORE_ADDR *npc)
1639 1.1 christos {
1640 1.1 christos unsigned long insn = sparc_fetch_instruction (pc);
1641 1.1 christos int conditional_p = X_COND (insn) & 0x7;
1642 1.1 christos int branch_p = 0, fused_p = 0;
1643 1.1 christos long offset = 0; /* Must be signed for sign-extend. */
1644 1.1 christos
1645 1.1 christos if (X_OP (insn) == 0 && X_OP2 (insn) == 3)
1646 1.1 christos {
1647 1.1 christos if ((insn & 0x10000000) == 0)
1648 1.1 christos {
1649 1.1 christos /* Branch on Integer Register with Prediction (BPr). */
1650 1.1 christos branch_p = 1;
1651 1.1 christos conditional_p = 1;
1652 1.1 christos }
1653 1.1 christos else
1654 1.1 christos {
1655 1.1 christos /* Compare and Branch */
1656 1.1 christos branch_p = 1;
1657 1.1 christos fused_p = 1;
1658 1.1 christos offset = 4 * X_DISP10 (insn);
1659 1.1 christos }
1660 1.10 christos }
1661 1.1 christos else if (X_OP (insn) == 0 && X_OP2 (insn) == 6)
1662 1.1 christos {
1663 1.1 christos /* Branch on Floating-Point Condition Codes (FBfcc). */
1664 1.1 christos branch_p = 1;
1665 1.1 christos offset = 4 * X_DISP22 (insn);
1666 1.1 christos }
1667 1.1 christos else if (X_OP (insn) == 0 && X_OP2 (insn) == 5)
1668 1.1 christos {
1669 1.1 christos /* Branch on Floating-Point Condition Codes with Prediction
1670 1.1 christos (FBPfcc). */
1671 1.1 christos branch_p = 1;
1672 1.1 christos offset = 4 * X_DISP19 (insn);
1673 1.1 christos }
1674 1.1 christos else if (X_OP (insn) == 0 && X_OP2 (insn) == 2)
1675 1.1 christos {
1676 1.1 christos /* Branch on Integer Condition Codes (Bicc). */
1677 1.1 christos branch_p = 1;
1678 1.10 christos offset = 4 * X_DISP22 (insn);
1679 1.7 christos }
1680 1.1 christos else if (X_OP (insn) == 0 && X_OP2 (insn) == 1)
1681 1.10 christos {
1682 1.10 christos /* Branch on Integer Condition Codes with Prediction (BPcc). */
1683 1.10 christos branch_p = 1;
1684 1.1 christos offset = 4 * X_DISP19 (insn);
1685 1.1 christos }
1686 1.1 christos else if (X_OP (insn) == 2 && X_OP3 (insn) == 0x3a)
1687 1.1 christos {
1688 1.1 christos frame_info_ptr frame = get_current_frame ();
1689 1.1 christos
1690 1.1 christos /* Trap instruction (TRAP). */
1691 1.1 christos gdbarch *arch = regcache->arch ();
1692 1.1 christos sparc_gdbarch_tdep *tdep = gdbarch_tdep<sparc_gdbarch_tdep> (arch);
1693 1.9 christos return tdep->step_trap (frame, insn);
1694 1.1 christos }
1695 1.1 christos
1696 1.1 christos /* FIXME: Handle DONE and RETRY instructions. */
1697 1.1 christos
1698 1.1 christos if (branch_p)
1699 1.1 christos {
1700 1.1 christos if (fused_p)
1701 1.1 christos {
1702 1.1 christos /* Fused compare-and-branch instructions are non-delayed,
1703 1.1 christos and do not have an annulling capability. So we need to
1704 1.1 christos always set a breakpoint on both the NPC and the branch
1705 1.1 christos target address. */
1706 1.1 christos gdb_assert (offset != 0);
1707 1.1 christos return pc + offset;
1708 1.1 christos }
1709 1.1 christos else if (conditional_p)
1710 1.1 christos {
1711 1.1 christos /* For conditional branches, return nPC + 4 iff the annul
1712 1.1 christos bit is 1. */
1713 1.1 christos return (X_A (insn) ? *npc + 4 : 0);
1714 1.1 christos }
1715 1.1 christos else
1716 1.1 christos {
1717 1.1 christos /* For unconditional branches, return the target if its
1718 1.1 christos specified condition is "always" and return nPC + 4 if the
1719 1.1 christos condition is "never". If the annul bit is 1, set *NPC to
1720 1.1 christos zero. */
1721 1.1 christos if (X_COND (insn) == 0x0)
1722 1.1 christos pc = *npc, offset = 4;
1723 1.1 christos if (X_A (insn))
1724 1.11 christos *npc = 0;
1725 1.1 christos
1726 1.1 christos return pc + offset;
1727 1.1 christos }
1728 1.1 christos }
1729 1.8 christos
1730 1.7 christos return 0;
1731 1.1 christos }
1732 1.8 christos
1733 1.10 christos static CORE_ADDR
1734 1.1 christos sparc_step_trap (const frame_info_ptr &frame, unsigned long insn)
1735 1.1 christos {
1736 1.1 christos return 0;
1737 1.8 christos }
1738 1.1 christos
1739 1.7 christos static std::vector<CORE_ADDR>
1740 1.7 christos sparc_software_single_step (struct regcache *regcache)
1741 1.1 christos {
1742 1.1 christos struct gdbarch *arch = regcache->arch ();
1743 1.7 christos sparc_gdbarch_tdep *tdep = gdbarch_tdep<sparc_gdbarch_tdep> (arch);
1744 1.1 christos CORE_ADDR npc, nnpc;
1745 1.8 christos
1746 1.1 christos CORE_ADDR pc, orig_npc;
1747 1.1 christos std::vector<CORE_ADDR> next_pcs;
1748 1.8 christos
1749 1.1 christos pc = regcache_raw_get_unsigned (regcache, tdep->pc_regnum);
1750 1.1 christos orig_npc = npc = regcache_raw_get_unsigned (regcache, tdep->npc_regnum);
1751 1.1 christos
1752 1.1 christos /* Analyze the instruction at PC. */
1753 1.1 christos nnpc = sparc_analyze_control_transfer (regcache, pc, &npc);
1754 1.1 christos if (npc != 0)
1755 1.1 christos next_pcs.push_back (npc);
1756 1.7 christos
1757 1.1 christos if (nnpc != 0)
1758 1.1 christos next_pcs.push_back (nnpc);
1759 1.1 christos
1760 1.1 christos /* Assert that we have set at least one breakpoint, and that
1761 1.1 christos they're not set at the same spot - unless we're going
1762 1.10 christos from here straight to NULL, i.e. a call or jump to 0. */
1763 1.10 christos gdb_assert (npc != 0 || nnpc != 0 || orig_npc == 0);
1764 1.1 christos gdb_assert (nnpc != npc || orig_npc == 0);
1765 1.1 christos
1766 1.1 christos return next_pcs;
1767 1.1 christos }
1768 1.1 christos
1769 1.1 christos static void
1770 1.3 christos sparc_write_pc (struct regcache *regcache, CORE_ADDR pc)
1771 1.1 christos {
1772 1.3 christos gdbarch *arch = regcache->arch ();
1773 1.3 christos sparc_gdbarch_tdep *tdep = gdbarch_tdep<sparc_gdbarch_tdep> (arch);
1774 1.3 christos
1775 1.3 christos regcache_cooked_write_unsigned (regcache, tdep->pc_regnum, pc);
1776 1.3 christos regcache_cooked_write_unsigned (regcache, tdep->npc_regnum, pc + 4);
1777 1.1 christos }
1778 1.10 christos
1779 1.1 christos
1781 1.8 christos /* Iterate over core file register note sections. */
1782 1.8 christos
1783 1.8 christos static void
1784 1.1 christos sparc_iterate_over_regset_sections (struct gdbarch *gdbarch,
1785 1.1 christos iterate_over_regset_sections_cb *cb,
1786 1.1 christos void *cb_data,
1787 1.7 christos const struct regcache *regcache)
1788 1.7 christos {
1789 1.10 christos sparc_gdbarch_tdep *tdep = gdbarch_tdep<sparc_gdbarch_tdep> (gdbarch);
1790 1.10 christos
1791 1.10 christos cb (".reg", tdep->sizeof_gregset, tdep->sizeof_gregset, tdep->gregset, NULL,
1792 1.10 christos cb_data);
1793 1.10 christos cb (".reg2", tdep->sizeof_fpregset, tdep->sizeof_fpregset, tdep->fpregset,
1794 1.7 christos NULL, cb_data);
1795 1.7 christos }
1796 1.7 christos
1797 1.7 christos
1799 1.7 christos static int
1800 1.7 christos validate_tdesc_registers (const struct target_desc *tdesc,
1801 1.7 christos struct tdesc_arch_data *tdesc_data,
1802 1.7 christos const char *feature_name,
1803 1.7 christos const char * const register_names[],
1804 1.10 christos unsigned int registers_num,
1805 1.10 christos unsigned int reg_start)
1806 1.7 christos {
1807 1.7 christos int valid_p = 1;
1808 1.7 christos const struct tdesc_feature *feature;
1809 1.7 christos
1810 1.1 christos feature = tdesc_find_feature (tdesc, feature_name);
1811 1.1 christos if (feature == NULL)
1812 1.1 christos return 0;
1813 1.7 christos
1814 1.7 christos for (unsigned int i = 0; i < registers_num; i++)
1815 1.1 christos valid_p &= tdesc_numbered_register (feature, tdesc_data,
1816 1.1 christos reg_start + i,
1817 1.1 christos register_names[i]);
1818 1.1 christos
1819 1.1 christos return valid_p;
1820 1.1 christos }
1821 1.1 christos
1822 1.11 christos static struct gdbarch *
1823 1.11 christos sparc32_gdbarch_init (struct gdbarch_info info, struct gdbarch_list *arches)
1824 1.11 christos {
1825 1.1 christos const struct target_desc *tdesc = info.target_desc;
1826 1.1 christos int valid_p = 1;
1827 1.1 christos
1828 1.1 christos /* If there is already a candidate, use it. */
1829 1.7 christos arches = gdbarch_list_lookup_by_info (arches, &info);
1830 1.7 christos if (arches != NULL)
1831 1.7 christos return arches->gdbarch;
1832 1.7 christos
1833 1.1 christos /* Allocate space for the new architecture. */
1834 1.1 christos gdbarch *gdbarch
1835 1.10 christos = gdbarch_alloc (&info, gdbarch_tdep_up (new sparc_gdbarch_tdep));
1836 1.1 christos sparc_gdbarch_tdep *tdep = gdbarch_tdep<sparc_gdbarch_tdep> (gdbarch);
1837 1.7 christos
1838 1.7 christos tdep->pc_regnum = SPARC32_PC_REGNUM;
1839 1.7 christos tdep->npc_regnum = SPARC32_NPC_REGNUM;
1840 1.1 christos tdep->step_trap = sparc_step_trap;
1841 1.1 christos tdep->fpu_register_names = sparc32_fpu_register_names;
1842 1.1 christos tdep->fpu_registers_num = ARRAY_SIZE (sparc32_fpu_register_names);
1843 1.1 christos tdep->cp0_register_names = sparc32_cp0_register_names;
1844 1.7 christos tdep->cp0_registers_num = ARRAY_SIZE (sparc32_cp0_register_names);
1845 1.7 christos
1846 1.1 christos set_gdbarch_long_double_bit (gdbarch, 128);
1847 1.11 christos set_gdbarch_long_double_format (gdbarch, floatformats_ieee_quad);
1848 1.11 christos
1849 1.1 christos set_gdbarch_wchar_bit (gdbarch, 16);
1850 1.1 christos set_gdbarch_wchar_signed (gdbarch, 1);
1851 1.1 christos
1852 1.1 christos set_gdbarch_num_regs (gdbarch, SPARC32_NUM_REGS);
1853 1.1 christos set_gdbarch_register_name (gdbarch, sparc32_register_name);
1854 1.1 christos set_gdbarch_register_type (gdbarch, sparc32_register_type);
1855 1.1 christos set_gdbarch_num_pseudo_regs (gdbarch, SPARC32_NUM_PSEUDO_REGS);
1856 1.1 christos set_tdesc_pseudo_register_name (gdbarch, sparc32_pseudo_register_name);
1857 1.1 christos set_tdesc_pseudo_register_type (gdbarch, sparc32_pseudo_register_type);
1858 1.1 christos set_gdbarch_pseudo_register_read (gdbarch, sparc32_pseudo_register_read);
1859 1.1 christos set_gdbarch_deprecated_pseudo_register_write (gdbarch,
1860 1.1 christos sparc32_pseudo_register_write);
1861 1.11 christos
1862 1.1 christos /* Register numbers of various important registers. */
1863 1.1 christos set_gdbarch_sp_regnum (gdbarch, SPARC_SP_REGNUM); /* %sp */
1864 1.1 christos set_gdbarch_pc_regnum (gdbarch, SPARC32_PC_REGNUM); /* %pc */
1865 1.1 christos set_gdbarch_fp0_regnum (gdbarch, SPARC_F0_REGNUM); /* %f0 */
1866 1.1 christos
1867 1.1 christos /* Call dummy code. */
1868 1.1 christos set_gdbarch_frame_align (gdbarch, sparc32_frame_align);
1869 1.1 christos set_gdbarch_call_dummy_location (gdbarch, ON_STACK);
1870 1.7 christos set_gdbarch_push_dummy_code (gdbarch, sparc32_push_dummy_code);
1871 1.7 christos set_gdbarch_push_dummy_call (gdbarch, sparc32_push_dummy_call);
1872 1.7 christos
1873 1.7 christos set_gdbarch_return_value_as_value (gdbarch, sparc32_return_value);
1874 1.1 christos set_gdbarch_stabs_argument_has_addr
1875 1.1 christos (gdbarch, sparc32_stabs_argument_has_addr);
1876 1.1 christos
1877 1.1 christos set_gdbarch_skip_prologue (gdbarch, sparc32_skip_prologue);
1878 1.1 christos
1879 1.1 christos /* Stack grows downward. */
1880 1.1 christos set_gdbarch_inner_than (gdbarch, core_addr_lessthan);
1881 1.1 christos
1882 1.1 christos set_gdbarch_breakpoint_kind_from_pc (gdbarch,
1883 1.1 christos sparc_breakpoint::kind_from_pc);
1884 1.1 christos set_gdbarch_sw_breakpoint_from_kind (gdbarch,
1885 1.1 christos sparc_breakpoint::bp_from_kind);
1886 1.8 christos
1887 1.8 christos set_gdbarch_frame_args_skip (gdbarch, 8);
1888 1.8 christos
1889 1.1 christos set_gdbarch_software_single_step (gdbarch, sparc_software_single_step);
1890 1.1 christos set_gdbarch_write_pc (gdbarch, sparc_write_pc);
1891 1.1 christos
1892 1.1 christos set_gdbarch_dummy_id (gdbarch, sparc_dummy_id);
1893 1.1 christos
1894 1.1 christos frame_base_set_default (gdbarch, &sparc32_frame_base);
1895 1.1 christos
1896 1.1 christos /* Hook in the DWARF CFI frame unwinder. */
1897 1.7 christos dwarf2_frame_set_init_reg (gdbarch, sparc32_dwarf2_frame_init_reg);
1898 1.7 christos /* Register DWARF vendor CFI handler. */
1899 1.10 christos set_gdbarch_execute_dwarf_cfa_vendor_op (gdbarch,
1900 1.7 christos sparc_execute_dwarf_cfa_vendor_op);
1901 1.7 christos /* FIXME: kettenis/20050423: Don't enable the unwinder until the
1902 1.10 christos StackGhost issues have been resolved. */
1903 1.10 christos
1904 1.10 christos /* Hook in ABI-specific overrides, if they have been registered. */
1905 1.10 christos gdbarch_init_osabi (info, gdbarch);
1906 1.10 christos
1907 1.10 christos frame_unwind_append_unwinder (gdbarch, &sparc32_frame_unwind);
1908 1.10 christos
1909 1.10 christos if (tdesc_has_registers (tdesc))
1910 1.10 christos {
1911 1.10 christos tdesc_arch_data_up tdesc_data = tdesc_data_alloc ();
1912 1.10 christos
1913 1.10 christos /* Validate that the descriptor provides the mandatory registers
1914 1.10 christos and allocate their numbers. */
1915 1.10 christos valid_p &= validate_tdesc_registers (tdesc, tdesc_data.get (),
1916 1.10 christos "org.gnu.gdb.sparc.cpu",
1917 1.10 christos sparc_core_register_names,
1918 1.10 christos ARRAY_SIZE (sparc_core_register_names),
1919 1.7 christos SPARC_G0_REGNUM);
1920 1.10 christos valid_p &= validate_tdesc_registers (tdesc, tdesc_data.get (),
1921 1.7 christos "org.gnu.gdb.sparc.fpu",
1922 1.7 christos tdep->fpu_register_names,
1923 1.10 christos tdep->fpu_registers_num,
1924 1.10 christos SPARC_F0_REGNUM);
1925 1.7 christos valid_p &= validate_tdesc_registers (tdesc, tdesc_data.get (),
1926 1.7 christos "org.gnu.gdb.sparc.cp0",
1927 1.1 christos tdep->cp0_register_names,
1928 1.1 christos tdep->cp0_registers_num,
1929 1.3 christos SPARC_F0_REGNUM
1930 1.3 christos + tdep->fpu_registers_num);
1931 1.1 christos if (!valid_p)
1932 1.1 christos return NULL;
1933 1.1 christos
1934 1.1 christos /* Target description may have changed. */
1935 1.1 christos info.tdesc_data = tdesc_data.get ();
1936 1.1 christos tdesc_use_registers (gdbarch, tdesc, std::move (tdesc_data));
1937 1.1 christos }
1938 1.1 christos
1939 1.1 christos /* If we have register sets, enable the generic core file support. */
1940 1.1 christos if (tdep->gregset)
1941 1.1 christos set_gdbarch_iterate_over_regset_sections
1942 1.8 christos (gdbarch, sparc_iterate_over_regset_sections);
1943 1.1 christos
1944 1.1 christos register_sparc_ravenscar_ops (gdbarch);
1945 1.1 christos
1946 1.1 christos return gdbarch;
1947 1.1 christos }
1948 1.10 christos
1949 1.10 christos /* Helper functions for dealing with register windows. */
1951 1.1 christos
1952 1.1 christos void
1953 1.1 christos sparc_supply_rwindow (struct regcache *regcache, CORE_ADDR sp, int regnum)
1954 1.1 christos {
1955 1.1 christos struct gdbarch *gdbarch = regcache->arch ();
1956 1.1 christos enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
1957 1.1 christos int offset = 0;
1958 1.1 christos gdb_byte buf[8];
1959 1.1 christos int i;
1960 1.1 christos
1961 1.1 christos /* This function calls functions that depend on the global current thread. */
1962 1.1 christos gdb_assert (regcache->ptid () == inferior_ptid);
1963 1.1 christos
1964 1.1 christos if (sp & 1)
1965 1.1 christos {
1966 1.1 christos /* Registers are 64-bit. */
1967 1.1 christos sp += BIAS;
1968 1.1 christos
1969 1.1 christos for (i = SPARC_L0_REGNUM; i <= SPARC_I7_REGNUM; i++)
1970 1.1 christos {
1971 1.1 christos if (regnum == i || regnum == -1)
1972 1.1 christos {
1973 1.8 christos target_read_memory (sp + ((i - SPARC_L0_REGNUM) * 8), buf, 8);
1974 1.1 christos
1975 1.1 christos /* Handle StackGhost. */
1976 1.1 christos if (i == SPARC_I7_REGNUM)
1977 1.1 christos {
1978 1.1 christos ULONGEST wcookie = sparc_fetch_wcookie (gdbarch);
1979 1.1 christos ULONGEST i7;
1980 1.1 christos
1981 1.1 christos i7 = extract_unsigned_integer (buf + offset, 8, byte_order);
1982 1.1 christos store_unsigned_integer (buf + offset, 8, byte_order,
1983 1.1 christos i7 ^ wcookie);
1984 1.1 christos }
1985 1.8 christos
1986 1.1 christos regcache->raw_supply (i, buf);
1987 1.1 christos }
1988 1.1 christos }
1989 1.1 christos }
1990 1.1 christos else
1991 1.1 christos {
1992 1.1 christos /* Registers are 32-bit. Toss any sign-extension of the stack
1993 1.1 christos pointer. */
1994 1.1 christos sp &= 0xffffffffUL;
1995 1.1 christos
1996 1.1 christos /* Clear out the top half of the temporary buffer, and put the
1997 1.1 christos register value in the bottom half if we're in 64-bit mode. */
1998 1.1 christos if (gdbarch_ptr_bit (regcache->arch ()) == 64)
1999 1.1 christos {
2000 1.1 christos memset (buf, 0, 4);
2001 1.1 christos offset = 4;
2002 1.1 christos }
2003 1.1 christos
2004 1.1 christos for (i = SPARC_L0_REGNUM; i <= SPARC_I7_REGNUM; i++)
2005 1.1 christos {
2006 1.1 christos if (regnum == i || regnum == -1)
2007 1.1 christos {
2008 1.1 christos target_read_memory (sp + ((i - SPARC_L0_REGNUM) * 4),
2009 1.8 christos buf + offset, 4);
2010 1.1 christos
2011 1.1 christos /* Handle StackGhost. */
2012 1.1 christos if (i == SPARC_I7_REGNUM)
2013 1.1 christos {
2014 1.1 christos ULONGEST wcookie = sparc_fetch_wcookie (gdbarch);
2015 1.1 christos ULONGEST i7;
2016 1.1 christos
2017 1.1 christos i7 = extract_unsigned_integer (buf + offset, 4, byte_order);
2018 1.1 christos store_unsigned_integer (buf + offset, 4, byte_order,
2019 1.8 christos i7 ^ wcookie);
2020 1.1 christos }
2021 1.1 christos
2022 1.1 christos regcache->raw_supply (i, buf);
2023 1.1 christos }
2024 1.1 christos }
2025 1.10 christos }
2026 1.10 christos }
2027 1.10 christos
2028 1.1 christos void
2029 1.1 christos sparc_collect_rwindow (const struct regcache *regcache,
2030 1.1 christos CORE_ADDR sp, int regnum)
2031 1.1 christos {
2032 1.1 christos struct gdbarch *gdbarch = regcache->arch ();
2033 1.1 christos enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
2034 1.1 christos int offset = 0;
2035 1.1 christos gdb_byte buf[8];
2036 1.1 christos int i;
2037 1.8 christos
2038 1.1 christos /* This function calls functions that depend on the global current thread. */
2039 1.1 christos gdb_assert (regcache->ptid () == inferior_ptid);
2040 1.1 christos
2041 1.1 christos if (sp & 1)
2042 1.1 christos {
2043 1.1 christos /* Registers are 64-bit. */
2044 1.1 christos sp += BIAS;
2045 1.1 christos
2046 1.1 christos for (i = SPARC_L0_REGNUM; i <= SPARC_I7_REGNUM; i++)
2047 1.1 christos {
2048 1.1 christos if (regnum == -1 || regnum == SPARC_SP_REGNUM || regnum == i)
2049 1.1 christos {
2050 1.1 christos regcache->raw_collect (i, buf);
2051 1.1 christos
2052 1.1 christos /* Handle StackGhost. */
2053 1.1 christos if (i == SPARC_I7_REGNUM)
2054 1.1 christos {
2055 1.1 christos ULONGEST wcookie = sparc_fetch_wcookie (gdbarch);
2056 1.1 christos ULONGEST i7;
2057 1.1 christos
2058 1.1 christos i7 = extract_unsigned_integer (buf + offset, 8, byte_order);
2059 1.1 christos store_unsigned_integer (buf, 8, byte_order, i7 ^ wcookie);
2060 1.8 christos }
2061 1.1 christos
2062 1.1 christos target_write_memory (sp + ((i - SPARC_L0_REGNUM) * 8), buf, 8);
2063 1.1 christos }
2064 1.1 christos }
2065 1.1 christos }
2066 1.1 christos else
2067 1.8 christos {
2068 1.1 christos /* Registers are 32-bit. Toss any sign-extension of the stack
2069 1.1 christos pointer. */
2070 1.1 christos sp &= 0xffffffffUL;
2071 1.1 christos
2072 1.1 christos /* Only use the bottom half if we're in 64-bit mode. */
2073 1.1 christos if (gdbarch_ptr_bit (regcache->arch ()) == 64)
2074 1.1 christos offset = 4;
2075 1.1 christos
2076 1.1 christos for (i = SPARC_L0_REGNUM; i <= SPARC_I7_REGNUM; i++)
2077 1.1 christos {
2078 1.1 christos if (regnum == -1 || regnum == SPARC_SP_REGNUM || regnum == i)
2079 1.1 christos {
2080 1.1 christos regcache->raw_collect (i, buf);
2081 1.1 christos
2082 1.1 christos /* Handle StackGhost. */
2083 1.1 christos if (i == SPARC_I7_REGNUM)
2084 1.1 christos {
2085 1.1 christos ULONGEST wcookie = sparc_fetch_wcookie (gdbarch);
2086 1.1 christos ULONGEST i7;
2087 1.1 christos
2088 1.1 christos i7 = extract_unsigned_integer (buf + offset, 4, byte_order);
2089 1.1 christos store_unsigned_integer (buf + offset, 4, byte_order,
2090 1.3 christos i7 ^ wcookie);
2091 1.1 christos }
2092 1.1 christos
2093 1.1 christos target_write_memory (sp + ((i - SPARC_L0_REGNUM) * 4),
2094 1.6 christos buf + offset, 4);
2095 1.1 christos }
2096 1.1 christos }
2097 1.1 christos }
2098 1.8 christos }
2099 1.1 christos
2100 1.1 christos /* Helper functions for dealing with register sets. */
2101 1.8 christos
2102 1.1 christos void
2103 1.1 christos sparc32_supply_gregset (const struct sparc_gregmap *gregmap,
2104 1.8 christos struct regcache *regcache,
2105 1.1 christos int regnum, const void *gregs)
2106 1.1 christos {
2107 1.8 christos const gdb_byte *regs = (const gdb_byte *) gregs;
2108 1.1 christos int i;
2109 1.1 christos
2110 1.12 christos if (regnum == SPARC32_PSR_REGNUM || regnum == -1)
2111 1.1 christos regcache->raw_supply (SPARC32_PSR_REGNUM, regs + gregmap->r_psr_offset);
2112 1.1 christos
2113 1.1 christos if (regnum == SPARC32_PC_REGNUM || regnum == -1)
2114 1.3 christos regcache->raw_supply (SPARC32_PC_REGNUM, regs + gregmap->r_pc_offset);
2115 1.1 christos
2116 1.1 christos if (regnum == SPARC32_NPC_REGNUM || regnum == -1)
2117 1.1 christos regcache->raw_supply (SPARC32_NPC_REGNUM, regs + gregmap->r_npc_offset);
2118 1.1 christos
2119 1.8 christos if (regnum == SPARC32_Y_REGNUM || regnum == -1)
2120 1.1 christos regcache->raw_supply (SPARC32_Y_REGNUM, regs + gregmap->r_y_offset);
2121 1.1 christos
2122 1.1 christos if (regnum == SPARC_G0_REGNUM || regnum == -1)
2123 1.1 christos regcache->raw_supply_zeroed (SPARC_G0_REGNUM);
2124 1.1 christos
2125 1.1 christos if ((regnum >= SPARC_G1_REGNUM && regnum <= SPARC_O7_REGNUM) || regnum == -1)
2126 1.1 christos {
2127 1.10 christos int offset = gregmap->r_g1_offset;
2128 1.3 christos
2129 1.1 christos for (i = SPARC_G1_REGNUM; i <= SPARC_O7_REGNUM; i++)
2130 1.1 christos {
2131 1.1 christos if (regnum == i || regnum == -1)
2132 1.1 christos regcache->raw_supply (i, regs + offset);
2133 1.1 christos offset += 4;
2134 1.1 christos }
2135 1.1 christos }
2136 1.1 christos
2137 1.3 christos if ((regnum >= SPARC_L0_REGNUM && regnum <= SPARC_I7_REGNUM) || regnum == -1)
2138 1.1 christos {
2139 1.1 christos /* Not all of the register set variants include Locals and
2140 1.1 christos Inputs. For those that don't, we read them off the stack. */
2141 1.1 christos if (gregmap->r_l0_offset == -1)
2142 1.8 christos {
2143 1.1 christos ULONGEST sp;
2144 1.1 christos
2145 1.1 christos regcache_cooked_read_unsigned (regcache, SPARC_SP_REGNUM, &sp);
2146 1.1 christos sparc_supply_rwindow (regcache, sp, regnum);
2147 1.1 christos }
2148 1.1 christos else
2149 1.1 christos {
2150 1.3 christos int offset = gregmap->r_l0_offset;
2151 1.1 christos
2152 1.1 christos for (i = SPARC_L0_REGNUM; i <= SPARC_I7_REGNUM; i++)
2153 1.1 christos {
2154 1.6 christos if (regnum == i || regnum == -1)
2155 1.1 christos regcache->raw_supply (i, regs + offset);
2156 1.1 christos offset += 4;
2157 1.1 christos }
2158 1.8 christos }
2159 1.1 christos }
2160 1.1 christos }
2161 1.8 christos
2162 1.1 christos void
2163 1.1 christos sparc32_collect_gregset (const struct sparc_gregmap *gregmap,
2164 1.8 christos const struct regcache *regcache,
2165 1.1 christos int regnum, void *gregs)
2166 1.1 christos {
2167 1.8 christos gdb_byte *regs = (gdb_byte *) gregs;
2168 1.1 christos int i;
2169 1.1 christos
2170 1.1 christos if (regnum == SPARC32_PSR_REGNUM || regnum == -1)
2171 1.3 christos regcache->raw_collect (SPARC32_PSR_REGNUM, regs + gregmap->r_psr_offset);
2172 1.1 christos
2173 1.1 christos if (regnum == SPARC32_PC_REGNUM || regnum == -1)
2174 1.1 christos regcache->raw_collect (SPARC32_PC_REGNUM, regs + gregmap->r_pc_offset);
2175 1.1 christos
2176 1.1 christos if (regnum == SPARC32_NPC_REGNUM || regnum == -1)
2177 1.8 christos regcache->raw_collect (SPARC32_NPC_REGNUM, regs + gregmap->r_npc_offset);
2178 1.1 christos
2179 1.1 christos if (regnum == SPARC32_Y_REGNUM || regnum == -1)
2180 1.1 christos regcache->raw_collect (SPARC32_Y_REGNUM, regs + gregmap->r_y_offset);
2181 1.1 christos
2182 1.1 christos if ((regnum >= SPARC_G1_REGNUM && regnum <= SPARC_O7_REGNUM) || regnum == -1)
2183 1.1 christos {
2184 1.1 christos int offset = gregmap->r_g1_offset;
2185 1.10 christos
2186 1.3 christos /* %g0 is always zero. */
2187 1.1 christos for (i = SPARC_G1_REGNUM; i <= SPARC_O7_REGNUM; i++)
2188 1.3 christos {
2189 1.1 christos if (regnum == i || regnum == -1)
2190 1.1 christos regcache->raw_collect (i, regs + offset);
2191 1.1 christos offset += 4;
2192 1.1 christos }
2193 1.8 christos }
2194 1.1 christos
2195 1.1 christos if ((regnum >= SPARC_L0_REGNUM && regnum <= SPARC_I7_REGNUM) || regnum == -1)
2196 1.1 christos {
2197 1.1 christos /* Not all of the register set variants include Locals and
2198 1.1 christos Inputs. For those that don't, we read them off the stack. */
2199 1.1 christos if (gregmap->r_l0_offset != -1)
2200 1.1 christos {
2201 1.3 christos int offset = gregmap->r_l0_offset;
2202 1.1 christos
2203 1.1 christos for (i = SPARC_L0_REGNUM; i <= SPARC_I7_REGNUM; i++)
2204 1.1 christos {
2205 1.6 christos if (regnum == i || regnum == -1)
2206 1.1 christos regcache->raw_collect (i, regs + offset);
2207 1.1 christos offset += 4;
2208 1.1 christos }
2209 1.1 christos }
2210 1.1 christos }
2211 1.8 christos }
2212 1.8 christos
2213 1.1 christos void
2214 1.1 christos sparc32_supply_fpregset (const struct sparc_fpregmap *fpregmap,
2215 1.1 christos struct regcache *regcache,
2216 1.8 christos int regnum, const void *fpregs)
2217 1.1 christos {
2218 1.1 christos const gdb_byte *regs = (const gdb_byte *) fpregs;
2219 1.1 christos int i;
2220 1.3 christos
2221 1.1 christos for (i = 0; i < 32; i++)
2222 1.1 christos {
2223 1.1 christos if (regnum == (SPARC_F0_REGNUM + i) || regnum == -1)
2224 1.6 christos regcache->raw_supply (SPARC_F0_REGNUM + i,
2225 1.1 christos regs + fpregmap->r_f0_offset + (i * 4));
2226 1.1 christos }
2227 1.1 christos
2228 1.1 christos if (regnum == SPARC32_FSR_REGNUM || regnum == -1)
2229 1.1 christos regcache->raw_supply (SPARC32_FSR_REGNUM, regs + fpregmap->r_fsr_offset);
2230 1.8 christos }
2231 1.8 christos
2232 1.1 christos void
2233 1.1 christos sparc32_collect_fpregset (const struct sparc_fpregmap *fpregmap,
2234 1.1 christos const struct regcache *regcache,
2235 1.8 christos int regnum, void *fpregs)
2236 1.8 christos {
2237 1.1 christos gdb_byte *regs = (gdb_byte *) fpregs;
2238 1.1 christos int i;
2239 1.1 christos
2240 1.1 christos for (i = 0; i < 32; i++)
2241 1.1 christos {
2242 1.1 christos if (regnum == (SPARC_F0_REGNUM + i) || regnum == -1)
2243 1.3 christos regcache->raw_collect (SPARC_F0_REGNUM + i,
2244 1.1 christos regs + fpregmap->r_f0_offset + (i * 4));
2245 1.1 christos }
2246 1.1 christos
2247 1.1 christos if (regnum == SPARC32_FSR_REGNUM || regnum == -1)
2248 1.1 christos regcache->raw_collect (SPARC32_FSR_REGNUM,
2249 1.1 christos regs + fpregmap->r_fsr_offset);
2250 1.1 christos }
2251 1.1 christos
2252 1.1 christos
2254 1.1 christos /* SunOS 4. */
2255 1.3 christos
2256 1.1 christos /* From <machine/reg.h>. */
2257 1.1 christos const struct sparc_gregmap sparc32_sunos4_gregmap =
2258 1.1 christos {
2259 1.1 christos 0 * 4, /* %psr */
2260 1.1 christos 1 * 4, /* %pc */
2261 1.3 christos 2 * 4, /* %npc */
2262 1.1 christos 3 * 4, /* %y */
2263 1.1 christos -1, /* %wim */
2264 1.1 christos -1, /* %tbr */
2265 1.1 christos 4 * 4, /* %g1 */
2266 1.1 christos -1 /* %l0 */
2267 1.9 christos };
2268 1.1 christos
2269 1.9 christos const struct sparc_fpregmap sparc32_sunos4_fpregmap =
2270 1.1 christos {
2271 1.10 christos 0 * 4, /* %f0 */
2272 1.1 christos 33 * 4, /* %fsr */
2273 };
2274
2275 const struct sparc_fpregmap sparc32_bsd_fpregmap =
2276 {
2277 0 * 4, /* %f0 */
2278 32 * 4, /* %fsr */
2279 };
2280
2281 void _initialize_sparc_tdep ();
2282 void
2283 _initialize_sparc_tdep ()
2284 {
2285 gdbarch_register (bfd_arch_sparc, sparc32_gdbarch_init);
2286 }
2287